Showing posts with label Cat (feline). Show all posts
Showing posts with label Cat (feline). Show all posts

Thursday, August 1, 2019

Introducing My New Textbook: Feline Endocrinology - The First Book Fully Dedicated to Endocrine Disorders of the Cat



Over the last year, I have been hard at work editing and writing chapters for this book, the first one written exclusively about Feline Endocrinology.

Our primary goal for this book is to provide veterinarians, veterinary students, and others interested in cats with a concise and complete information resource on the pathophysiology, clinical signs, differential diagnosis, diagnosis, and treatment of endocrine disorders in cats.

If you are a veterinarian that sees cats with endocrine disorders, I highly recommend that you get this book. I have included everything I know about cats in this book!

Take a look at the video below, where we (the 3 editors) talk about the development of this valuable reference.



Click here to watch


The book is divided into 6 sections, including:
  • Hypothalamus and pituitary
  • Thyroid gland
  • Calcium and parathyroid glands
  • Adrenal glands
  • Endocrine pancreas
  • Blood pressure, body condition and nutrition

Moving forward, I will be blogging a series of posts about the 6 sections of this book, including the topics, authors, and even a few videos (included in the chapter) where applicable. 



From the publisher:
Developed by 50 of the most renowned feline experts from 13 countries around the world, this unique and practical book of feline endocrinology is a most valuable tool for small animal veterinarians who want to deepen their understanding on the pathophysiology, clinical signs, diagnosis, treatment, and prognosis of every endocrine condition recognized in cats. Rather than have the authors treating cats as small dogs, a cat-only text will allow fully focused description of conditions in this one species. 

Allowing these experts in feline endocrinology space to fully teach us what they have learned about cats will result in a superior resource composed of text, figures, boxes, tables, algorithms, and videos (presented on an electronic version of the text).

Monday, August 3, 2015

Hypothyroidism in Cats—How is it Diagnosed and Treated?


Earlier this year, Dr. Mark Peterson participated in an Endocrinology course organized by the American College of Veterinary Internal Medicine (ACVIM). An overview of his lecture on feline hypothyroidism was summarized by Dr. Jennifer Garcia and published in the July 2015 issue of Veterinary Medicine. To access this article online, click here.

Hypothyroidism in cats—how is it diagnosed and treated? 
More cats may be affected by this disease than you think, and even cats with subclinical or mild forms may benefit from thyroid replacement therapy. In his presentation at the American College of Veterinary Internal Medicine (ACVIM) Small Animal Internal Medicine Endocrinology Course “Feline hypothyroidism: Current aspects on prevalence, diagnosis, and treatment,” Mark E. Peterson, DVM, DACVIM, noted that the number of cats with this disorder may be higher than we think and that many of these cats may benefit from therapy. Peterson explained that most cases of hypothyroidism in cats are iatrogenic in nature—after iodine-131 therapy, antithyroid drug therapy or thyroidectomy. Congenital and adult-onset forms of the disease occur but are considered rare.

As clinicians, we need to be more aware of this disease since even cats with subclinical or mild forms may benefit from thyroid replacement therapy. Peterson pointed out that up to 20% to 50% of cats with hypothyroidism may have azotemia, which will improve with treatment of the hypothyroidism. Diagnosing hypothyroidism in cats could be challenging, as even cats that are ultimately diagnosed with this disorder may initially have a thyroxine (T4) concentration in the low end of the reference range. The same can be true of a free T4 concentration, even if performed by using equilibrium dialysis.

Patient evaluation and monitoring
For patients in which hypothyroidism is suspected, either based on clinical signs or history (e.g. post iodine-131 therapy), Peterson recommends evaluating the T4 concentration in conjunction with a thyroid-stimulating hormone (TSH) concentration. While the only commercially available TSH assay is canine-specific, the assay cross-reacts with feline TSH as well. As in dogs, finding a low or low-normal T4 concentration in conjunction with an elevated TSH concentration is supportive of a diagnosis of hypothyroidism in cats.

Three months after iodine-131 therapy or antithyroid drug therapy is initiated or a thyroidectomy is performed, Peterson recommends monitoring T4 concentrations for up to six months. This should be considered sooner in cats that develop evidence of renal disease. He suggests that a post-treatment T4 concentration should be in the mid-normal range. Cats with values lower than this should have a measurement of their TSH concentration, but Peterson says some cats will experience an increase in their TSH concentration prior to a decrease in their T4 concentration.

Treatment recommendations 
So which cats should be treated with thyroid hormone therapy? Peterson suggests that cats that have supportive clinical signs—lethargy and weight gain—and low T4 or high TSH concentrations should be treated. Cats that have no clinical signs but have supportive laboratory test results and azotemia should also be treated.

For cats that require thyroid hormone supplementation, Peterson recommends a starting dose of levothyroxine 0.075 mg orally twice a day. This is higher than what is commonly used in dogs because cats metabolize the hormone much more quickly and don’t absorb it as well as dogs. Administration on an empty stomach is recommended. To monitor cats that are receiving replacement therapy, Peterson recommends a four-hour post-pill T4 concentration with a therapeutic goal in the mid-normal range.

Friday, July 31, 2015

Diagnosing Feline Hyperthyroidism: Not Always as Simple as One Might Believe


Earlier this year, Dr. Mark Peterson participated in an Endocrinology course organized by the American College of Veterinary Internal Medicine (ACVIM). An overview of his lecture on "Diagnosing feline hyperthyroidism" was summarized by Dr. Jennifer Garcia and published in the July 2015 issue of Veterinary Medicine. To access this article online, click here.

Diagnosing feline hyperthyroidism: It's not always as simple as it seems

Don't rely too heavily on T4 concentrations since cats can have a false elevation.

In his presentation, “Diagnosis of hyperthyroidism: A critical evaluation of our current available tests,” Mark Peterson, DVM, DACVIM, discussed some of the pitfalls in relying too heavily on thyroid (thyroxine, or T4) testing alone. While a total T4 concentration will be enough to make an accurate diagnosis of hyperthyroidism in more than 90% of cases, he warned to always pay attention to the clinical signs and physical examination findings. There are cats that can have a false elevation in their T4 concentration, so supportive clinical signs as well as a palpable thyroid nodule will help rule in or rule out the diagnosis.

When it comes to successfully palpating for evidence of a thyroid nodule, Peterson detailed a few of his favorite techniques:
  • Stand behind the cat with the cat facing away from you—the cat feels less stressed if it can’t see you. Peterson also puts the cat in a basket with a towel so the cat feels more secure and is less squirmy. Use your thumb and index finger to gently run the length of the trachea from the larynx to the thoracic inlet.
  • Alternatively, with the cat in the same position, turn its head to the left and palpate. Repeat with the cat’s head turned in the other direction.
Examine the cat from behind, with the cat facing the owner.

For patients in which a thyroid nodule can be palpated but there are no clinical signs and there is no elevation in T4 concentration, he recommends monitoring signs at home and rechecking the level in six to 12 months.

Peterson also noted that there are different cut-off values from laboratory to laboratory. This means that a T4 concentration that is normal at one laboratory, may actually be elevated at another. This serves as another reminder of the importance of the physical examination and clinical signs when trying to diagnose hyperthyroidism.

Monday, June 15, 2015

When To Start Thyroid Hormone Replacement in Cats Treated with Radioiodine (I-131)


I have a question about thyroid hormone supplementation for iatrogenic hypothyroidism, especially in cats treated with radioiodine (I-131). More specifically, how long after radioactive iodine therapy do you wait before recommending supplementing hypothyroid cats with thyroxine?

I work as a small animal internist at a referral hospital where we treat hyperthyroid cats with radioiodine. After treatment, we routinely run serum T4 and free T4 concentrations and full blood work 30 and 90 days after the cat is discharged. I have found that about 20% of these cats are biochemically hypothyroid (low total or free T4 values) at the 30-day recheck, but many of these cats will revert to normal by the 90-day recheck. The other internist at my practice supplements these cats with L-thyroxine at the first recheck if the serum T4 and free T4 values are low. She does this even if they are not azotemic, with the rationale being that the studies show that hypothyroid cats develop worsening azotemia, which can affect their survival (1).

I am not sure if this is the best approach since I have heard that the residual thyroid follicles may take a few months to regain full function after being suppressed by the over-active thyroid tissue for so long. However, I just want to do what's best (don't we all!)

Thank you so much. I enjoy reading your website and attending your lectures at conferences.

My Response:

First of all, I don't find that free T4 determinations are all that helpful in the diagnosis of feline hypothyroidism (2-4). Many cats treated with radioiodine with maintain low-normal values for both total and free T4 but develop high serum TSH concentrations, a situation commonly referred to as subclinical hypothyroidism in human patients. The problem with our cats, however, is that although most of these cats do remain nonclinical for hypothyroidism, many will develop azotemia that will progressively worsen without treatment with thyroid hormone replacement.

So what I do is as follows: at 30-days post-treatment, I monitor serum concentrations of T4, free T4, and TSH, along with a serum chemistry panel to follow kidney values. If T4 or free T4 values fall into the lower third of the reference range (below 1.5-2.0 µg/dl; reference interval ≈1-4 µg/dl) and TSH rises (above 0.5-0.6 ng/dl; reference range, 0.03-0.03 ng/ml), then the cat is mildly hypothyroid. Some of these cats will recover enough thyroid function to end up as euthyroid, but most remain mildly hypothyroid at both 3 and 6 months, at least based on the finding of high TSH concentrations.

In these cats with mild or subclinical hypothyroidism, I don't like to treat with levothyroxine (LT4) at this time unless evidence of chronic kidney disease (CKD) has developed, with serum creatinine values rising from normal to greater than 2.0 mg/dl. However, this definitely indicates the need for LT4 replacement in order to help maintain renal perfusion and stabilize the serum creatinine concentrations (3-5).

If we decide not to treat (which is generally the case unless new azotemia has developed), then we monitor again with the same thyroid and renal profiles at 3- and 6 months. Again, if T4 falls into the low-normal range (less than 1.5-2.0 µg/dl) and TSH is clearly high (above 0.5-0.6 ng/dl), I would definitely supplement if new or worsening azotemia is detected. If no azotemia is present, I generally continue to monitor and don't supplement with LT4 unless azotemia does develop.

Now, if the serum T4 is below normal and the TSH is clearly high at 3 or 6 months (or later), then the cat has overt hypothyroidism (no longer subclinical) and I would definitely supplement with L-T4 (2-4). Many of these cats are still not very symptomatic, but that may simply be a matter of time. If left untreated for 1 to 2 years, most of those cats will develop classical signs of hypothyroidism (eg, lethargy, hair loss, etc).

So in your case, I would add-in serum TSH to your monitoring protocol. If your owners find that too expensive, then I would replace the free T4 measurement with TSH determination, which is more more helpful in monitoring for cats treated with radioiodine.

References:
  1. Williams TL, Peak KJ, Brodbelt D, et al. Survival and the development of azotemia after treatment of hyperthyroid cats. J Vet Intern Med 2010;24:863-869. 
  2. Peterson ME. Feline focus: Diagnostic testing for feline thyroid disease: hypothyroidism. Compend Contin Educ Vet 2013;35:E4.  
  3. Peterson ME. Diagnosis and management of iatrogenic hypothyroidism In: Little SE, ed. August's Consultations in Feline Internal Medicine: Elsevier, 2014;in press.
  4. Peterson ME, Guterl JN.Subclinical iatrogenic hypothyroidism in the cat: Clinical, laboratory, and thyroid scintigraphic findings in 35 cases. J Vet Intern Med 2015;29:448-449.
  5. Williams TL, Elliott J, Syme HM. Effect on renal function of restoration of euthyroidism in hyperthyroid cats with iatrogenic hypothyroidism. J Vet Intern Med 2014;28:1251-1255.

Monday, May 11, 2015

Top Endocrine Publications of 2014: The Feline Thyroid Gland


In my fourth compilation of the canine and feline endocrine publications of 2014, I’m moving on to disorders of the feline thyroid gland. Listed below are 32 papers that deal with a variety of thyroid gland topics of issues of clinical importance in cats.

These range from from a survey of owners' perceptions and experiences after using radioiodine to treat their hyperthyroid cats (1) to the results of an online survey to determine owner experiences and opinions on the management of their cats using oral anti-thyroid medications (14); from case reports of methimazole or carbimazole-induced toxicity in cats with hyperthyroidism (3,5,19) to a number of publications involving various issues of medical treatment with methimazole (2,4,7,14,15,20); from a study of the concurrent diseases detected in hyperthyroid cats undergoing assessment for radioiodine treatment (25) to concurrent diseases and conditions in cats with renal infarcts (including hyperthyroidism (12); and finally, from studies investigating the efficacy of an iodine-restricted diet for management of cats with hyperthyroidism (9,30) to other forms of dietary management for this endocrine disease (19,24).

Finally, 2 investigations add further data concerning chronic renal disease in hyperthyroid cats (31,32), as well as the fact that iatrogenic hypothyroidism contributes to azotemia in these cats (31). A number of 2014 publications deal with the rising prevalence and/or etiopathogenesis of hyperthyroidism in cats (6,16,17,21,22,23,29). Unfortunately, further studies are needed to better define the cause(s) of this perplexing disease (download my review paper for more discussion) (23).

References:
  1. Boland LA, Murray JK, Bovens CP, et al. A survey of owners' perceptions and experiences of radioiodine treatment of feline hyperthyroidism in the UK. J Feline Med Surg 2014;16:663-670. 
  2. Boretti FS, Sieber-Ruckstuhl NS, Schafer S, et al. Transdermal application of methimazole in hyperthyroid cats: a long-term follow-up study. J Feline Med Surg 2014;16:453-459. 
  3. Bowlt K, Cattin I, Stewart J. Carbimazole-associated hypersensitivity vasculitis in a cat. J Small Anim Pract 2014;55:643-647. 
  4. Bruyette D. Methimazole management of feline hyperthyroidism. Today's Veterinary Practice 2014;July/August:38-41.
  5. Castro Lopez J, Lloret A, Ravera I, et al. Pyogranulomatous mural folliculitis in a cat treated with methimazole. J Feline Med Surg 2014;16:527-531. 
  6. Chow K, Beatty JA, Barrs VR, et al. PBDEs and feline hyperthyroidism. Vet Rec 2014;175:433-434. 
  7. Daminet S, Kooistra HS, Fracassi F, et al. Best practice for the pharmacological management of hyperthyroid cats with antithyroid drugs. J Small Anim Pract 2014;55:4-13. 
  8. Daniel GB, Neelis DA. Thyroid scintigraphy in veterinary medicine. Semin Nucl Med 2014;44:24-34. 
  9. Fritsch DA, Allen TA, Dodd DE, et al. A restricted iodine food reduces circulating thyroxine concentrations in cats with hyperthyroidism. Intern J Appl Res Vet Med 2014;12:24-32. 
  10. Fryers A, Elwood C. Hypokalaemia in a hyperthyroid domestic shorthair cat with adrenal hyperplasia. J Feline Med Surg 2014;16:853-857. 
  11. Galgano M, Spalla I, Callegari C, et al. Primary hypothyroidism and thyroid goiter in an adult cat. J Vet Intern Med 2014;28:682-686. 
  12. Hickey MC, Jandrey K, Farrell KS, et al. Concurrent diseases and conditions in cats with renal infarcts. J Vet Intern Med 2014;28:319-323. 
  13. Higgs P, Costa M, Freke A, et al. Measurement of thyroxine and cortisol in canine and feline blood samples using two immunoassay analysers. J Small Anim Pract 2014;55:153–159. http://onlinelibrary.wiley.com/doi/10.1111/jsap.12181/abstract
  14. Higgs P, Murray JK, Hibbert A. Medical management and monitoring of the hyperthyroid cat: a survey of UK general practitioners. J Feline Med Surg 2014;16:788-795. 
  15. Hill K, Gieseg M, Bridges J, et al. The pharmacokinetics of methimazole in a novel lipophilic formulation administered transdermally to healthy cats. N Z Vet J 2014;62:208-213. 
  16. Hill KE, Shaw IC. Does exposure to thyroxine-mimics cause feline thyroid hyperplasia? Vet Rec 2014;175:228-229. 
  17. Kooistra HS. Feline hyperthyroidism: a common disorder with unknown pathogenesis. Vet Rec 2014;175:456-457. 
  18. Kujawa A, Olias P, Bottcher A, et al. Thyroid transcription factor-1 is a specific marker of benign but not malignant feline lung tumours. J Comp Pathol 2014;151:19-24. 
  19. Laflamme D, Gunn-Moore D. Nutrition of aging cats. Vet Clin North Am Small Anim Pract 2014;44:761-774, vi. 
  20. Mardell EJ. Diagnosis and management of feline hyperthyroidism. In Practice 2014;35:162-170.
  21. McLean JL, Lobetti RG, Schoeman JP. Worldwide prevalence and risk factors for feline hyperthyroidism: A review. J S Afr Vet Assoc 2014;85:1097. 
  22. O'Neill DG, Church DB, McGreevy PD, et al. Prevalence of disorders recorded in cats attending primary-care veterinary practices in England. Vet J 2014;202:286-291. 
  23. Peterson ME. Feline hyperthyroidism: an animal model for toxic nodular goiter. J Endocrinol 2014;223:T97-T114. 
  24. Peterson ME, Eirmann L. Dietary management of feline endocrine disease. Vet Clin North Am Small Anim Pract2014;44:775-788. 
  25. Puig J, Cattin I, Seth M. Concurrent diseases in hyperthyroid cats undergoing assessment prior to radioiodine treatment. J Feline Med Surg 2014. 
  26. Rasmussen SH, Andersen HH, Kjelgaard-Hansen M. Combined assessment of serum free and total T4 in a general clinical setting seemingly has limited potential in improving diagnostic accuracy of thyroid dysfunction in dogs and cats (Letter). Vet Clin Pathol 2014;43:1-3. 
  27. Sangster JK, Panciera DL, Abbott JA, et al. Cardiac biomarkers in hyperthyroid cats. J Vet Intern Med 2014;28:465-472. 
  28. Schober KE, Kent AM, Aeffner F. Tachycardia-induced cardiomyopathy in a cat. Schweiz Arch Tierheilkd 2014;156:133-139. 
  29. Stephens MJ, Neill DG, Church DB, et al. Feline hyperthyroidism reported in primary-care veterinary practices in England: prevalence, associated factors and spatial distribution. Vet Rec 2014;175:458. 
  30. van der Kooij M, Becvarova I, Meyer HP, et al. Effects of an iodine-restricted food on client-owned cats with hyperthyroidism. J Feline Med Surg 2014;16:491-498. 
  31. Williams TL, Elliott J, Syme HM. Effect on renal function of restoration of euthyroidism in hyperthyroid cats with iatrogenic hypothyroidism. J Vet Intern Med 2014;28:1251-1255. 
  32. Williams TL, Elliott J, Syme HM. Association between urinary vascular endothelial growth factor excretion and chronic kidney disease in hyperthyroid cats. Res Vet Sci 2014;96:436-441. 

Monday, February 23, 2015

Top Endocrine Publications of 2014: The Canine and Feline Pituitary Gland


For my next review of the endocrine publications of 2014 that concern companion animals, I'm going to turn to the theme of diagnosis and treatment of pituitary problems in dogs and cats. Listed below are 18 clinical and research papers written in 2014 that deal with a variety of pituitary gland issues of clinical importance in dogs and cats.

These range from case studies of cats with primary hypodipsia and inappropriate antidiuretic hormone secretion (1,2) to an investigation of the clinical utility of formulas of estimated serum osmolality (3); from a study of acromegaly in a series German shepherd dogs (4) to a number of excellent studies of the clinical features, diagnosis, or treatment of feline acromegaly (8,9,13,15); and from investigation of the stress response in dogs (5,14) to a study of the intraoperative changes of circulating vasopressin during elective ovariohysterectomy in dogs (6).

Other publications include a study investigating the problems associated with commercial assays for determination of feline ACTH (7) to a review of the use of GnRH agonists in dogs and cats (10); from a report of a transsphenoidal surgical technique for removal of pituitary adenomas in dogs with pituitary-dependent Cushing's disease (11) to a review of the role of prolactin in canine mammary tumor development (12); and finally, from a report of the clinical findings, diagnostic test results, and treatment outcome of 30 cats with spontaneous Cushing's disease (16) to an investigation of the mutations associated with pituitary dwarfism in Saarloos and Czechoslovakian wolfdogs (18).

References:
  1. Bach J, Claus K. Primary hypodipsia in a cat with severe hypernatremia. J Feline Med Surg 2014;16:240-242. 
  2. Demonaco SM, Koch MW, Southard TL. Syndrome of inappropriate antidiuretic hormone secretion in a cat with a putative Rathke's cleft cyst. J Feline Med Surg 2014;16:1010-1015. 
  3. Dugger DT, Epstein SE, Hopper K, et al. A comparison of the clinical utility of several published formulae for estimated osmolality of canine serum. J Vet Emerg Crit Care (San Antonio) 2014;24:188-193. 
  4. Fracassi F, Zagnoli L, Rosenberg D, et al. Spontaneous acromegaly: a retrospective case control study in German shepherd dogs. Vet J 2014;202:69-75. 
  5. Hekman JP, Karas AZ, Sharp CR. Psychogenic stress in hospitalized dogs: cross species comparisons, implications for health care, and the challenges of evaluation. Animals (Basel) 2014;4:331-347. 
  6. Hoglund OV, Hagman R, Olsson K, et al. Intraoperative changes in blood pressure, heart rate, plasma vasopressin, and urinary noradrenalin during elective ovariohysterectomy in dogs: repeatability at removal of the 1st and 2nd ovary. Vet Surg 2014;43:852-859. 
  7. Kemppainen RJ. Amino acid differences in cat adrenocorticotropin account for the inability of a human-based immunoradiometric assay to detect the molecule in cat plasma. J Vet Diagn Invest 2014;26:431-433.
  8. Lamb CR, Ciasca TC, Mantis P, et al. Computed tomographic signs of acromegaly in 68 diabetic cats with hypersomatotropism. J Feline Med Surg 2014;16:99-108. 
  9. Lourenco BN, Randall E, Seiler G, et al. Abdominal ultrasonographic findings in acromegalic cats. J Feline Med Surg 2014.  
  10. Lucas X. Clinical use of deslorelin (GnRH agonist) in companion animals: a review. Reprod Domest Anim 2014;49 Suppl 4:64-71. 
  11. Mamelak AN, Owen TJ, Bruyette D. Transsphenoidal surgery using a high definition video telescope for pituitary adenomas in dogs with pituitary dependent hypercortisolism: methods and results. Vet Surg 2014;43:369-379. 
  12. Michel E, Rohrer Bley C, Kowalewski MP, et al. Prolactin--to be reconsidered in canine mammary tumourigenesis? Vet Comp Oncol 2014;12:93-105. 
  13. Myers JA, Lunn KF, Bright JM. Echocardiographic findings in 11 cats with acromegaly. J Vet Intern Med 2014;28:1235-1238. 
  14. Nagasawa M, Shibata Y, Yonezawa A, et al. The behavioral and endocrinological development of stress response in dogs. Dev Psychobiol 2014;56:726-733. 
  15. Rosca M, Forcada Y, Solcan G, et al. Screening diabetic cats for hypersomatotropism: performance of an enzyme-linked immunosorbent assay for insulin-like growth factor 1. J Feline Med Surg 2014;16:82-88. 
  16. Valentin SY, Cortright CC, Nelson RW, et al. Clinical findings, diagnostic test results, and treatment outcome in cats with spontaneous hyperadrenocorticism: 30 cases. J Vet Intern Med 2014;28:481-487. 
  17. van Rijn SJ, Riemers FM, van den Heuvel D, et al. Expression stability of reference genes for quantitative RT-PCR of healthy and diseased pituitary tissue samples varies between humans, mice, and dogs. Mol Neurobiol 2014;49:893-899. 
  18. Voorbij AM, Leegwater PA, Kooistra HS. Pituitary dwarfism in Saarloos and Czechoslovakian wolfdogs is associated with a mutation in LHX3. J Vet Intern Med 2014;28:1770-1774. 

Friday, January 30, 2015

Clinical use of Gonadotropin-Releasing Hormone (GnRH) Agonists in Companion Animals: An Overview

In dogs, cats, ferrets, and pet birds, reproductive physiology is under the control of the hypothalamic­pituitary­-gonadal (HPG) axis. Many hormones are responsible for estrus and reproduction, the most significant being luteinizing hormone (LH), follicle stimulating hormone (FSH), and gonadotropin-releasing hormone (GnRH). Short-lived GnRH is released in a pulsatile fashion from the hypothalamus and acts on the pars distalis of the pituitary gland to stimulate the synthesis and release of the gonadotropins, FSH and LH (Figure 1). Secretion of these gonadotropins into the circulation lead to changes gonadal hormone production and reproductive function.

Figure 1: Regulation of gonadal secretion via the hypothalamic-pituitary-gonadal axis.
Chemical modification of the native short-acting GnRH molecule has led to development of long-acting, potent GnRH agonists, which have been used as a medical means of management for a number of reproductive issues and diseases of companion animals (1-3). GnRH agonists may either stimulate estrus or effectively sterilize the patient, depending on the duration of action and the dosage applied. These agents work by initially stimulating gonadotrophin secretion, followed shortly thereafter with desensitization of the GnRH receptor to the GnRH agonist (Figure 2). This results in a temporary but long-term, fully-reversible down-regulation of gonadotrophin secretion, leading to suppression of reproduction function in both male and female animals (4).

Figure 2: GnRH agonists initially stimulate pituitary LH and FSH secretion, followed by desensitization and down-relation of gonadotrophin secretion.
In recent years, effective low-dose, slow-release implants containing potent GnRH agonists have been released for use in veterinary medicine, especially in Europe and Australia. In companion animals, the deslorelin implant (Suprelorin, Virbac) is the most commonly GnRH agonist used in small animals (5). Deslorelin implants work by lowering pituitary gonadotrophin section. This is not a permanent change but depending on the deslorelin dose, can last up to many months. The implant does not have to be removed, but subsequent doses are needed to sustain the effect.

Unfortunately, GnRH agonist availability is limited in the United States. Although there are GnRH agonists available that are approved for the treatment of human diseases, such as prostate cancer, they are costly and not financially feasible for a pet owner to consider. To date, deslorelin acetate (Suprelorin, Virbac Animal Health, Fort Worth, TX, USA) is the only GnRH agonist that is currently available in the United States but only for the treatment of adrenal disease in ferrets (6). However, it is not legal to use Suporelin in non-ferret species in the United States and extra-label use is explicitly prohibited.

The aim of this blog is to review the applications and treatments of the deslorelin (GnRH agonist) currently used in companion animal medicine.

Deslorelin Use in Intact Male Dogs
In male dogs treated with deslorelin, this GnRH agonist leads to decreased gonadotropins secretion and resultant lowered plasma testosterone concentrations, decreased testicular volume, and azoospermia (1-3,7-9). However, the response to this GnRH agonist can be very variable from one dog to another, and the duration of inhibition of testosterone secretion depends both on the concentration of the deslorelin implant and the size of the dog.

Many studies have confirmed that use of GnRH agonists for reversible chemical sterilization in male dogs is both safe and well-tolerated (7-9). Furthermore, repeated implantation can be used to maintain circulating testosterone at low concentrations. If the deslorelin implants are stopped, the treated dogs will regain normal serum testosterone levels within a few weeks, with full recovery of seminal quality once the GnRH implant has lost its efficacy (10,11).

In addition to contraception, GnRH agonists have also been used to reduce the size of the prostate gland, an effect that may be useful in dogs with benign prostatic hyperplasia (12-14).

Deslorelin in Intact Male Cats
As in dogs, GnRH agonists are gaining increased importance in feline reproductive medicine (2,3,15). In intact male cats, deslorelin implants induce chemical sterilization, as in dogs. In these cats, testosterone concentrations decline rapidly to undetectable values by 3 weeks after implantation and remain low for weeks in the majority of the tomcats treated. As the circulating testosterone falls, the testicular volume decreases and penile spines disappear.

However, high individual variability has been reported, with the duration of efficacy varying between 6 and 24 months (15-17). Similar to dogs, it is possible to use repeated implantation of deslorelin to sustain the drug’s effect.

Deslorelin in Intact Bitches
Although deslorelin implants are only approved for male dogs in Europe (and again, not at all in the USA), studies have been performed in the bitch to investigate its use either as a contraceptive or a method of estrus induction (1-3,18-20).

The first step in the mechanism of action of all GnRH agonists is the stimulation in FSH and LH secretion (so-called "flare-up effect") (4). This followed within a few days by a profound hypogonadal effect (i.e., decrease in FSH and LH levels), which is achieved through receptor down-regulation by internalization of receptors. Generally this induced and reversible hypogonadism is the therapeutic goal, as noted above for the male dogs and cats (1-3).

The initial stimulating effect on gonadotrophin secretion is more pronounced in females than in males (18,19). Thus, estrus induction will be observed in the majority of bitches implanted in anestrus. If pregnancy is achieved, most recommend removal of the deslorelin implant either at the beginning of proestrus, at the time of the LH surge, or at the time of ovulation (2,3,18,19). However, some have reported that some bitches carried their pregnancies to term without the implant being removed, suggesting that down-regulation of gonadotrophin secretion may not be strong enough to induce luteal failure in all bitches.

For use as a contraceptive method, the main problem with using deslorelin implants in female dogs is estrus induction, as discussed above (20). For this reason, deslorelin implants cannot be considered a viable alternative to other, current used contraception in bitches.

Deslorelin in Intact Queens
In contrast to female dogs, the main indication for the use of deslorelin in the female queen is estrus inhibition. Studies have confirmed that this GnRH agonist can be used to effectively suppress ovarian activity (15,20-22), but the duration of inhibition was highly variable among the individual queens depending on the dosage administered. However, deslorelin generally suppresses ovarian activity for many months.

Deslorelin in Spayed Bitches with Urinary Incontinence
Ovariectomy results in elevated circulating concentrations of pituitary LH because of the lack of gonadal negative-feedback on the pituitary gland. LH receptors are present throughout the canine urinary tract (23-25), and it has been postulated that elevated gonadotropins may contribute to the development of urethral sphincter mechanism incompetence (26,27).

Treatment of bitches with long-acting GnRH agonists, such as delorelin, downregulates LH secretion for prolonged time periods and temporarily restores continence to incontinent bitches for varying durations, ranging from 50-738 days (26,27). Similar to alpha-adrenergic agonists (e.g., phenylpropanolamine; PPA), GnRH agonists are not completely effective for the treatment of this urinary incontinence. However, unlike PPA, no adverse effects to GnRH agonists have been reported.

Deslorelin in Ferrets with Adrenal Disease
As in dogs and cats, deslorelin is also a promising and suitable method for contraception in ferrets (28-31). However, GnRH agonists are useful in medical management of ferrets suffering from adrenal disease (hyperadrenocorticism) a common disease in castrated males and females (32-34). In one study of ferrets with adrenal disease, the clinical signs (e.g., vulvar swelling, pruritus, sexual behavior, and aggression) were reduced or markedly suppressed within 14 days of implantation of the deslorelin (34). The time for signs to recur in these ferrets ranged from 8.5–20.5 months (34).

References:
  1. Trigg TE, Doyle AG, Walsh JD, et al. A review of advances in the use of the GnRH agonist deslorelin in control of reproduction. Theriogenology 2006;66:1507-1512. 
  2. Fontaine E, Fontbonne A. Clinical use of GnRH agonists in canine and feline species. Reprod Domest Anim 2011;46:344-353. 
  3. Lucas X. Clinical use of deslorelin (GnRH agonist) in companion animals: a review. Reprod Domest Anim 2014;49 Suppl 4:64-71. 
  4. Ortmann O, Weiss JM, Diedrich K. Gonadotrophin-releasing hormone (GnRH) and GnRH agonists: mechanisms of action. Reprod Biomed Online 2002;5 Suppl 1:1-7. 
  5. Suprelorin (deslorelin acetate). Summary report from the European Medicines Agency
  6. Suprelorin F. Package insert. Fort Worth, Texas: Virbac Animal Health 
  7. Junaidi A, Williamson PE, Martin GB, et al. Pituitary and testicular endocrine responses to exogenous gonadotrophin-releasing hormone (GnRH) and luteinising hormone in male dogs treated with GnRH agonist implants. Reprod Fertil Dev 2007;19:891-898. 
  8. Junaidi A, Williamson PE, Martin GB, et al. Dose-response studies for pituitary and testicular function in male dogs treated with the GnRH superagonist, deslorelin. Reprod Domest Anim 2009;44:725-734. 
  9. Romagnoli S, Siminica A, Sontas BH, et al. Semen quality and onset of sterility following administration of a 4.7-mg deslorelin implant in adult male dogs. Reprod Domest Anim 2012;47 Suppl 6:389-392. 
  10. Trigg TE, Wright PJ, Armour AF, et al. Use of a GnRH analogue implant to produce reversible long-term suppression of reproductive function in male and female domestic dogs. J Reprod Fertil Suppl 2001;57:255-261. 
  11. Gentil M, Hoffmann B, Spang A, et al. Restart of steroidogenesis in dogs during recrudescence of testicular function following downregulation with a GnRH-agonist implant. Cell Tissue Res 2012;350:513-523. 
  12. Vickery BH, McRae GI, Bonasch H. Effect of chronic administration of a highly potent LHRH agonist on prostate size and secretory function in geriatric dogs. Prostate 1982;3:123-130. 
  13. Nizanski W, Levy X, Ochota M, et al. Pharmacological treatment for common prostatic conditions in dogs - benign prostatic hyperplasia and prostatitis: an update. Reprod Domest Anim 2014;49 Suppl 2:8-15. 
  14. Polisca A, Orlandi R, Troisi A, et al. Clinical efficacy of the GnRH agonist (deslorelin) in dogs affected by benign prostatic hyperplasia and evaluation of prostatic blood flow by Doppler ultrasound. Reprod Domest Anim 2013;48:673-680. 
  15. Goericke-Pesch S, Wehrend A, Georgiev P. Suppression of fertility in adult cats. Reprod Domest Anim 2014;49 Suppl 2:33-40. 
  16. Goericke-Pesch S, Georgiev P, Antonov A, et al. Clinical efficacy of a GnRH-agonist implant containing 4.7 mg deslorelin, Suprelorin, regarding suppression of reproductive function in tomcats. Theriogenology 2011;75:803-810. 
  17. Goericke-Pesch S, Georgiev P, Fasulkov I, et al. Basal testosterone concentrations after the application of a slow-release GnRH agonist implant are associated with a loss of response to buserelin, a short-term GnRH agonist, in the tom cat. Theriogenology 2013;80:65-69. 
  18. Volkmann DH, Kutzler MA, Wheeler R, et al. The use of deslorelin implants for the synchronization of estrous in diestrous bitches. Theriogenology 2006;66:1497-1501. 
  19. Fontaine E, Mir F, Vannier F, et al. Induction of fertile oestrus in the bitch using Deslorelin, a GnRH agonist. Theriogenology 2011;76:1561-1566. 
  20. Maenhoudt C, Santos NR, Fontaine E, et al. Results of GnRH agonist implants in oestrous induction and oestrous suppression in bitches and queens. Reprod Domest Anim 2012;47 Suppl 6:393-397. 
  21. Goericke-Pesch S. Reproduction control in cats: new developments in non-surgical methods. J Feline Med Surg 2010;12:539-546. 
  22. Goericke-Pesch S, Georgiev P, Atanasov A, et al. Treatment of queens in estrus and after estrus with a GnRH-agonist implant containing 4.7 mg deslorelin; hormonal response, duration of efficacy, and reversibility. Theriogenology 2013;79:640-646. 
  23. Coit VA, Dowell FJ, Evans NP. Neutering affects mRNA expression levels for the LH- and GnRH-receptors in the canine urinary bladder. Theriogenology 2009;71:239–47.
  24. Ponglowhapan S, Church DB, Khalid M. Differences in the expression of luteinizing hormone and follicle-stimulating hormone receptors in the lower urinary tract between intact and gonadectomised male and female dogs. Domest Anim Endocrinol 2008;34:339-351. 
  25. Reichler IM, Welle M, Sattler U, et al. Comparative quantitative assessment of GnRH- and LH-receptor mRNA expression in the urinary tract of sexually intact and spayed female dogs. Theriogenology 2007;67:1134–42.
  26. Reichler IM, Hubler M, Jöchle W, et al. The effect of GnRH analogs on urinary incontinence after ablation of the ovaries in dogs. Theriogenology 2003;60:1207–16.
  27. Reichler IM, Jöchle W, Piché CA, , et al. Effect of a long-acting GnRH analogue or placebo on plasma LH/FSH, urethral pressure profiles and clinical signs of urinary incontinence due to sphincter mechanism incompetence in bitches. Theriogenology 2006;66:1227–36.
  28. Schoemaker NJ, van Deijk R, Muijlaert B, et al. Use of a gonadotropin releasing hormone agonist implant as an alternative for surgical castration in male ferrets (Mustela putorius furo). Theriogenology 2008;70:161-167. 
  29. Prohaczik A, Kulcsar M, Trigg T, et al. Comparison of four treatments to suppress ovarian activity in ferrets (Mustela putorius furo). Vet Rec 2010;166:74-78. 
  30. Goericke-Pesch S, Wehrend A. The use of a slow release GnRH-agonist implant in female ferrets in season for oestrus suppression. Schweiz Arch Tierheilkd 2012;154:487-491. 
  31. van Zeeland YR, Pabon M, Roest J, et al. Use of a GnRH agonist implant as alternative for surgical neutering in pet ferrets. Vet Rec 2014;175:66. 
  32. Rosenthal KL, Peterson ME, Quesenberry KE, et al. Hyperadrenocorticism associated with adrenocortical tumor or nodular hyperplasia of the adrenal gland in ferrets: 50 cases (1987-1991). J Am Vet Med Assoc 1993;203:271-275. 
  33. Schoemaker NJ, Teerds KJ, Mol JA, et al. The role of luteinizing hormone in the pathogenesis of hyperadrenocorticism in neutered ferrets. Mol Cell Endocrinol 2002;197:117-125. 
  34. Wagner RA, Piche CA, Jochle W, et al. Clinical and endocrine responses to treatment with deslorelin acetate implants in ferrets with adrenocortical disease. Am J Vet Res 2005;66:910-914. 

Friday, January 23, 2015

Top Endocrine Publications of 2014: Canine and Feline Reproductive Endocrinology


As I've done for the last 5 years, I’ve now finished compiling a fairly extensive list of references concerning canine and feline endocrinology that were written last year (in 2014). I’ll be sharing these with you over the next few months, as well as reviewing a few of the best papers from my lists of clinical endocrine publications.

In my last post, I provided my last list for the 2013 papers on canine and feline endocrine reproduction, so I've decided to start this year off with papers that deal with the same theme of endocrine disorders of the canine and feline gonads, prostate, and mammary gland.

Listed below are 23 papers published in 2014 that deal with a variety of topics of importance for reproductive endocrinology in dogs and cats. These range from the identification and study of kisspeptin (a protein ligand that activate GnRH neurons) in dogs (1) to the use of relaxin measurements to diagnose pregnancy status (2); as well as from a study of the effects of GnRH agonist and antagonists during the postnatal period in cats (3) to the effects of GnRH immunization for treatment of urinary incontinence in spayed bitches (4).

Other publication included studies dealing with suppression of fertility in dogs and cats (4-6,12,13,14,21) to endocrinologic investigations of pyometra (9), ovarian cysts (10), mammary neoplasia (16,19), and benign prostatic hyperplasia and prostatitis (17); and finally, from a study of oxytocin and social bonding in dogs (20) to a review of the influence of sex hormones on seizures in dogs and man (22).

References:
  1. Albers-Wolthers KH, de Gier J, Kooistra HS, et al. Identification of a novel kisspeptin with high gonadotrophin stimulatory activity in the dog. Neuroendocrinology 2014;99:178-189.
  2. Bergfelt DR, Peter AT, Beg MA. Relaxin: a hormonal aid to diagnose pregnancy status in wild mammalian species. Theriogenology 2014;82:1187-1198.
  3. Carranza A, Faya M, Merlo ML, et al. Effect of GnRH analogs in postnatal domestic cats. Theriogenology 2014;82:138-143.
  4. Donovan CE, Gordon JM, Kutzler MA. Gonadotropin-releasing hormone immunization for the treatment of urethral sphincter mechanism incompetence in ovariectomized bitches. Theriogenology 2014;81:196-202.
  5. Fagundes AK, Oliveira EC, Tenorio BM, et al. Injection of a chemical castration agent, zinc gluconate, into the testes of cats results in the impairment of spermatogenesis: a potentially irreversible contraceptive approach for this species? Theriogenology 2014;81:230-236.
  6. Favre RN, Bonaura MC, Praderio R, et al. Effect of melatonin implants on spermatogenesis in the domestic cat (Felis silvestris catus). Theriogenology 2014;82:851-856.
  7. Goericke-Pesch S, Wehrend A, Georgiev P. Suppression of fertility in adult cats. Reprod Domest Anim 2014;49 Suppl 2:33-40.
  8. Hoglund OV, Hagman R, Olsson K, et al. Intraoperative changes in blood pressure, heart rate, plasma vasopressin, and urinary noradrenalin during elective ovariohysterectomy in dogs: repeatability at removal of the 1st and 2nd ovary. Veterinary Surgery 2014;43:852-859.
  9. Jitpean S, Holst BS, Hoglund OV, et al. Serum insulin-like growth factor-I, iron, C-reactive protein, and serum amyloid A for prediction of outcome in dogs with pyometra. Theriogenology 2014;82:43-48.
  10. Knauf Y, Bostedt H, Failing K, et al. Gross pathology and endocrinology of ovarian cysts in bitches. Reprod Domest Anim 2014;49:463-468.
  11. Kobayashi M, Hori T, Kawakami E. Efficacy of low-dose human chorionic gonadotropin therapy in dogs with spermatogenic dysfunction: a preliminary study. Reprod Domest Anim 2014;49:E44-47.
  12. Lucas X. Clinical use of deslorelin (GnRH agonist) in companion animals: a review. Reprod Domest Anim 2014;49 Suppl 4:64-71.
  13. Maenhoudt C, Santos NR, Fontbonne A. Suppression of fertility in adult dogs. Reprod Domest Anim 2014;49 Suppl 2:58-63.
  14. Marino G, Rizzo S, Quartuccio M, et al. Deslorelin implants in pre-pubertal female dogs: short- and long-term effects on the genital tract. Reprod Domest Anim 2014;49:297-301.
  15. Meloni T, Comin A, Rota A, et al. IGF-I and NEFA concentrations in fetal fluids of term pregnancy dogs. Theriogenology 2014;81:1307-1311.
  16. Michel E, Rohrer Bley C, Kowalewski MP, et al. Prolactin--to be reconsidered in canine mammary tumourigenesis? Vet Comp Oncol 2014;12:93-105.
  17. Nizanski W, Levy X, Ochota M, et al. Pharmacological treatment for common prostatic conditions in dogs - benign prostatic hyperplasia and prostatitis: an update. Reprod Domest Anim 2014;49 Suppl 2:8-15.
  18. Parker K, Snead E. Atypical presentation of ovarian remnant syndrome in a dog. J Am Anim Hosp Assoc 2014;50:e1-5.
  19. Queiroga FL, Perez-Alenza MD, Gonzalez Gil A, et al. Clinical and prognostic implications of serum and tissue prolactin levels in canine mammary tumours. Vet Rec 2014;175:403.
  20. Romero T, Nagasawa M, Mogi K, et al. Oxytocin promotes social bonding in dogs. Proc Natl Acad Sci U S A 2014;111:9085-9090.
  21. Schafer-Somi S, Kaya D, Gultiken N, et al. Suppression of fertility in pre-pubertal dogs and cats. Reprod Domest Anim 2014;49 Suppl 2:21-27.
  22. Van Meervenne SA, Volk HA, Matiasek K, et al. The influence of sex hormones on seizures in dogs and humans. Vet J 2014;201:15-20.
  23. Volta A, Manfredi S, Vignoli M, et al. Use of contrast-enhanced ultrasonography in chronic pathologic canine testes. Reprod Domest Anim 2014;49:202-209.

Sunday, December 28, 2014

Top Endocrine Publications of 2013: Canine and Feline Reproductive Endocrinology

In my tenth compilation of the canine and feline endocrine publications, I’m moving on to endocrine disorders of the canine and feline gonads and mammary gland. Listed below are 20 papers published in 2013 that deal with a variety of topics of importance for reproductive endocrinology in dogs and cats.

Of all of these publications, one of the most common and clinically useful topics involves the use of gonadotropin-releasing hormone (GnRH) agonists for management of a variety of disorders. These include the use of GnRH agonist for treatment of queens in estrus and after estrus (3), for reproductive control in queens (4) and tom cats (5), and in dogs affected by benign prostatic hyperplasia (12).

On my next blog post, I will review the mechanism of action for the GnRH agonists, along with their many potential uses and dosage forms.

References:
  1. Adams GP, Ratto MH. Ovulation-inducing factor in seminal plasma: a review. Anim Reprod Sci 2013;136:148-156. 
  2. Faya M, Carranza A, Miotti R, et al. Fecal estradiol-17beta and testosterone in prepubertal domestic cats. Theriogenology 2013;80:584-586. 
  3. Goericke-Pesch S, Georgiev P, Atanasov A, et al. Treatment of queens in estrus and after estrus with a GnRH-agonist implant containing 4.7 mg deslorelin; hormonal response, duration of efficacy, and reversibility. Theriogenology 2013;79:640-646. 
  4. Goericke-Pesch S, Georgiev P, Atanasov A, et al. Treatment with Suprelorin in a pregnant cat. J Feline Med Surg 2013;15:357-360. 
  5. Goericke-Pesch S, Georgiev P, Fasulkov I, et al. Basal testosterone concentrations after the application of a slow-release GnRH agonist implant are associated with a loss of response to buserelin, a short-term GnRH agonist, in the tom cat. Theriogenology 2013;80:65-69. 
  6. Greenberg M, Lawler D, Zawistowski S, et al. Low-dose megestrol acetate revisited: a viable adjunct to surgical sterilization in free roaming cats? Vet J 2013;196:304-308. 
  7. Leroy C, Conchou F, Layssol-Lamour C, et al. Normal canine prostate gland: repeatability, reproducibility, observer-dependent variability of ultrasonographic measurements of the prostate in healthy intact beagles. Anat Histol Embryol 2013;42:355-361. 
  8. Luu VV, Hanatate K, Tanihara F, et al. The effect of relaxin supplementation of in vitro maturation medium on the development of cat oocytes obtained from ovaries stored at 4 degrees C. Reprod Biol 2013;13:122-126. 
  9. Marino G, Zanghi A. Activins and inhibins: expression and role in normal and pathological canine reproductive organs: a review. Anat Histol Embryol 2013;42:1-8. 
  10. Mattoso CR, Takahira RK, Beier SL, et al. Evaluation of von Willebrand factor during pregnancy, lactation and oestrous cycle in bitches affected and unaffected by von Willebrand disease. Reprod Domest Anim 2013;48:416-422. 
  11. Nishida CR, Everett S, Ortiz de Montellano PR. Specificity determinants of CYP1B1 estradiol hydroxylation. Mol Pharmacol 2013;84:451-458. 
  12. Polisca A, Orlandi R, Troisi A, et al. Clinical efficacy of the GnRH agonist (deslorelin) in dogs affected by benign prostatic hyperplasia and evaluation of prostatic blood flow by Doppler ultrasound. Reprod Domest Anim 2013;48:673-680. 
  13. Poppl AG, Mottin TS, Gonzalez FH. Diabetes mellitus remission after resolution of inflammatory and progesterone-related conditions in bitches. Res Vet Sci 2013;94:471-473. 
  14. Rota A, Tursi M, Zabarino S, et al. Monophasic teratoma of the ovarian remnant in a bitch. Reprod Domest Anim 2013;48:e26-e28. 
  15. Serafim MK, Silva GM, Duarte AB, et al. High insulin concentrations promote the in vitro growth and viability of canine preantral follicles. Reprod Fertil Dev 2013;25:927-934. 
  16. Sozmen M, Kabak YB, Gulbahar MY, et al. Immunohistochemical characterization of peroxisome proliferator-activated receptors in canine normal testis and testicular tumours. J Comp Pathol 2013;149:10-18. 
  17. Spankowsky S, Heuwieser W, Arlt SP. Does oral administration of the amino acid tyrosine affect oestradiol-17beta concentration and sexual behaviour in the bitch? Vet Rec 2013;172:212. 
  18. Trisolini C, Albrizio M, Roscino MT, et al. Leptin and queen ovary: new insights about ovulation. Res Vet Sci 2013;94:707-710. 
  19. Tvarijonaviciute A, Carrillo-Sanchez JD, Ceron JJ. Effect of estradiol and progesterone on metabolic biomarkers in healthy bitches. Reprod Domest Anim 2013;48:520-524. 
  20. Wongbandue G, Jewgenow K, Chatdarong K. Effects of thyroxin (T4) and activin A on in vitro growth of preantral follicles in domestic cats. Theriogenology 2013;79:824-832. 

Sunday, December 14, 2014

Top Endocrine Publications of 2013: Feline Diabetes Mellitus


In my ninth compilation of the canine and feline endocrine publications of 2013, I’m moving on to disorders of the feline endocrine pancreas. I covered the canine diabetic publications in a blog post last spring. Click this link to review my list of 2013 research papers that pertain to diabetes in dogs.

Listed below are 29 papers published in 2013 that deal with a variety of diabetic topics of clinical importance for diabetic cats.

These topics range from a study of survival time and prognostic factors in cats with newly diagnosed diabetes (2) to studies involving pathogenesis or risk factors for development of diabetes (6,15,20,21,24); from the relationship between diabetes and kidney disease and pancreatits (1,3) to a review of what we know about diabetic remission (10); and, from reviews of insulin treatment of diabetic cats (4,16,26) to the use of oral hypoglycemia agent or incretin hormonal therapy in cats (22,25).

Other studies range from investigations of diet management of obese and diabetic cats (5,7,17,29) to studies of insulin antibodies in cats (28); from reviews of secondary diabetes, including acromegaly and hyperadrenocorticism (18,19) to ketoacidosis (16,23); and finally, from the use of routine home glucose monitoring (9) to continuous glucose monitoring in cats (11,27).

References:
  1. Bloom CA, Rand JS. Diabetes and the kidney in human and veterinary medicine. Vet Clin North Am Small Anim Pract 2013;43:351-365. 
  2. Callegari C, Mercuriali E, Hafner M, et al. Survival time and prognostic factors in cats with newly diagnosed diabetes mellitus: 114 cases (2000-2009). J Am Vet Med Assoc 2013;243:91-95. 
  3. Caney SM. Pancreatitis and diabetes in cats. Vet Clin North Am Small Anim Pract 2013;43:303-317. 
  4. Caney SM. Management of cats on Lente insulin: tips and traps. Vet Clin North Am Small Anim Pract 2013;43:267-282. 
  5. Coradini M, Rand JS, Morton JM, et al. Fat mass, and not diet, has a large effect on postprandial leptin but not on adiponectin concentrations in cats. Domest Anim Endocrinol 2013;45:79-88. 
  6. Dirtu AC, Niessen SJ, Jorens PG, et al. Organohalogenated contaminants in domestic cats' plasma in relation to spontaneous acromegaly and type 2 diabetes mellitus: A clue for endocrine disruption in humans? Environ Int 2013;57-58:60-67. 
  7. Farrow HA, Rand JS, Morton JM, et al. Effect of dietary carbohydrate, fat, and protein on postprandial glycemia and energy intake in cats. J Vet Intern Med 2013;27:1121-1135. 
  8. Fleischhacker SN, Bauersachs S, Wehner A, et al. Differential expression of circulating microRNAs in diabetic and healthy lean cats. Vet J 2013;197:688-693. 
  9. Ford SL, Lynch H. Practical use of home blood glucose monitoring in feline diabetics. Vet Clin North Am Small Anim Pract 2013;43:283-301. 
  10. Gottlieb S, Rand JS. Remission in cats: including predictors and risk factors. Vet Clin North Am Small Anim Pract 2013;43:245-249. 
  11. Hafner M, Lutz TA, Reusch CE, et al. Evaluation of sensor sites for continuous glucose monitoring in cats with diabetes mellitus. J Feline Med Surg 2013;5:117-123. 
  12. Hoenig M, Pach N, Thomaseth K, et al. Cats differ from other species in their cytokine and antioxidant enzyme response when developing obesity. Obesity (Silver Spring) 2013;21:E407-414. 
  13. Hoenig M, Traas AM, Schaeffer DJ. Evaluation of routine hematology profile results and fructosamine, thyroxine, insulin, and proinsulin concentrations in lean, overweight, obese, and diabetic cats. J Am Vet Med Assoc 2013;243:1302-1309. 
  14. Leal RO, Gil S, Brito MT, et al. The use of oral recombinant feline interferon omega in two cats with type II diabetes mellitus and concurrent feline chronic gingivostomatitis syndrome. Ir Vet J 2013;66:19. 
  15. Link KR, Allio I, Rand JS, et al. The effect of experimentally induced chronic hyperglycaemia on serum and pancreatic insulin, pancreatic islet IGF-I and plasma and urinary ketones in the domestic cat (Felis felis). Gen Comp Endocrinol 2013;188:269-281. 
  16. Marshall RD, Rand JS, Gunew MN, et al. Intramuscular glargine with or without concurrent subcutaneous administration for treatment of feline diabetic ketoacidosis. J Vet Emerg Crit Care (San Antonio) 2013;23:286-290.
  17. Mimura K, Mori A, Lee P, et al. Impact of commercially available diabetic prescription diets on short-term postprandial serum glucose, insulin, triglyceride and free fatty acid concentrations of obese cats. J Vet Med Sci 2013;75:929-937. 
  18. Niessen SJ. Update on feline acromegaly. In Practice 2013;35:2-6. 
  19. Niessen SJ, Church DB, Forcada Y. Hypersomatotropism, acromegaly, and hyperadrenocorticism and feline diabetes mellitus. Vet Clin North Am Small Anim Pract 2013;43:319-350. 
  20. O'Leary CA, Duffy DL, Gething MA, et al. Investigation of diabetes mellitus in Burmese cats as an inherited trait: a preliminary study. N Z Vet J 2013;61:354-358. 
  21. Osto M, Zini E, Reusch CE, et al. Diabetes from humans to cats. Gen Comp Endocrinol 2013;182:48-53. 
  22. Palm CA, Feldman EC. Oral hypoglycemics in cats with diabetes mellitus. Vet Clin North Am Small Anim Pract 2013;43:407-415. 
  23. Rand JS. Diabetic ketoacidosis and hyperosmolar hyperglycemic state in cats. Vet Clin North Am Small Anim Pract 2013;43:367-379. 
  24. Rand JS. Pathogenesis of feline diabetes. Vet Clin North Am Small Anim Pract 2013;43:221-231. 
  25. Reusch CE, Padrutt I. New incretin hormonal therapies in humans relevant to diabetic cats. Vet Clin North Am Small Anim Pract 2013;43:417-433. 
  26. Roomp K, Rand JS. Management of diabetic cats with long-acting insulin. Vet Clin North Am Small Anim Pract 2013;43:251-266. 
  27. Surman S, Fleeman L. Continuous glucose monitoring in small animals. Vet Clin North Am Small Anim Pract 2013;43:381-406. 
  28. Takashima S, Nishii N, Hachisu T, et al. Natural anti-insulin autoantibodies in cats: enzyme-linked immunosorbent assay for the determination of plasma anti-insulin IgG and its concentrations in domestic cats. Res Vet Sci 2013;95:886-890. 
  29. Zoran DL, Rand JS. The role of diet in the prevention and management of feline diabetes. Vet Clin North Am Small Anim Pract 2013;43:233-243. 

Saturday, October 11, 2014

Unmasking Kidney Disease In Hyperthyroid Cats after Treatment


I have two hyperthyroid cats that both had "completely normal" kidney function until we started treating with methimazole. On treatment, the serum T4 concentrations in both cats have come down nicely to 1.2 and 2.0 µg/dl, respectively (reference interval, 1.0-4.0 µg/dl), so these values are within the low-normal range, which is what I aim for after treatment.

In the first cat, the serum creatinine has increased from 1.2 mg/dl up to 2.0 mg/dl, whereas the serum creatinine value in the second cat rose from 1.5 mg/dl up to 2.5 mg/dl. Based on the IRIS staging system, both cats could be classified as having stage 2 chronic kidney disease (CKD).

How do I manage such hyperthyroid cats that develop "new" CKD after treatment? Should I lower the methimazole or stop it all together in order to help improve the kidney function?

My Response:

Hyperthyroidism and CKD are both very common problems of the older cat and may occur concurrently in the same patient (1,2). Because hyperthyroidism increases the glomerular filtration rate (GFR) and renal blood flow (RBF), the kidney disease may be masked and only revealed once the cat is rendered euthyroid (3-5). As you know, that's what happened in these two feline patients.

However, it is very important to understand that treatment of hyperthyroidism doesn't cause new kidney problems; the CKD was already present in your cats before the methimazole treatment, but the serum creatinine values were normal, in part due to the high GFR associated with hyperthyroidism. Now that you have the hyperthyroidism under control, the lowering of circulating thyroid hormone concentrations has also resulted in a drop in GFR, unmasking the underlying CKD that was already there.

Management of hyperthyroid cats that develop kidney disease after treatment
So what do we do with hyperthyroid cats like your two patients here— cats that develop mild CKD after treatment of hyperthyroidism with methimazole?

It was once thought that if azotemia developed following medical treatment, then it would be best to stop the methimazole and leave the hyperthyroidism untreated (or at least under-treat it) to maximize renal function. This recommendation has now been widely abandoned, with the realization that hyperthyroidism could actually be causing renal injury in these cats through the process of glomerular hyperfiltration (1,2,6). This increase in glomerular pressure has been associated with proteinuria and evidence of tubular damage, which could result in progressive renal injury. In other words, hyperthyroidism has the potential to exacerbate these processes and worsen, rather than help, renal function.

On the other hand, it's also important not to over control hyperthyroidism. In other words, we don't want the post-treatment T4 concentrations to go too low because iatrogenic hypothyroidism will make the azotemia worse (7). Even mild degrees of hypothyroidism can worsen the azotemia in susceptible cats. This means that the serum T4 value does not have to be below reference range — even a serum T4 in the lower third of the reference range may be too low, especially if the serum TSH is high, diagnostic for mild hypothyroidism (8).

Because of this association between development of iatrogenic hypothyroidism and worsening of azotemia, my "goal" in treating cats with hyperthyroidism is to reduce the total T4 concentration into the middle of the reference range (e.g., 2.0-3.0 µg/dl with your lab). So in your first cat, you may want to lower the methimazole dose and allow the serum T4 to come up into the mid-normal range. This may help increase GFR and improve kidney function in that cat. One recent study found that restoration of euthyroidism in cats with iatrogenic hypothyroidism resulted in a significant reduction in serum creatinine concentration, with azotemia resolving in half of the cats (9).

Finally, if you unmask kidney disease after treatment of a hyperthyroid cat, this also means that you should take steps to attempt to slow the progression of CKD, just as you would in a geriatric cat with CKD alone. These steps may include one or more of the following, depending on secondary factors and stage of the CKD (10,11):
  • Antibiotics, if urinary tract infection
  • Antihypertensives, if hypertensive
  • Low-phosphate diet
  • Phosphorus binders
  • Calcitriol or ACE-inhibitors, if necessary
  • Subcutaneous fluids
Survival times of hyperthyroid cats that develop mild CKD after treatment
In most cats that develop newly-diagnosed azotemia after treatment for hyperthyroidism, the CKD is mild (usually IRIS stage 2) and associated with few clinical signs other than mild polyuria and polydipsia. Owners of cats that have developed azotemia still report that treatment of the hyperthyroidism has improved the clinical condition of their cat, as shown by weight gain and resolution of other clinical signs of hyperthyroidism.

The survival time of cats that develop azotemia following treatment of hyperthyroidism does not differ from those that do not develop any azotemia (7). This fact may be surprising to many practicing veterinarians who naturally assume that the development of CKD is associated with a worse prognosis. However, CKD progresses relatively slowly in cats, and only about half of all cats diagnosed with mild CKD will ultimately succumb to the disease (12). Many CKD cats die because of unrelated causes.

Survival times of hyperthyroid cats that are azotemic prior to treatment
The situation is completely different in cats that are already clearly azotemic (serum creatinine >2 mg/dl), even before any treatment for hyperthyroidism has been given. In general the survival of this group of cats with azotemic CKD prior to treatment is poor. In one study, the median survival time for azotemic cats was only 178 days; however, survival times in that study was very variable,  ranged from 0 days up to 1,505 days (4.1 years) (13).

Bottom Line:

Hyperthyroid cats that develop "new" CKD after treatment are common, but the azotemia is generally mild and we should not withhold methimazole treatment in those cats. However, we don't want to induce iatrogenic hypothyroidism, and steps should be taken to address the underlying CKD. Unless prior azotemia was present, the prognosis of most treated cats with mild CKD is good to excellent.

References:
  1. Langston CE, Reine NJ. Hyperthyroidism and the kidney. Clin Tech Small Anim Pract 2006;21:17-21.  
  2. Syme HM. Cardiovascular and renal manifestations of hyperthyroidism. Vet Clin North Am Small Anim Pract 2007;37:723-743.  
  3. Graves TK, Olivier NB, Nachreiner RF, et al. Changes in renal function associated with treatment of hyperthyroidism in cats. Am J Vet Res 1994;55:1745-1749.  
  4. Boag AK, Neiger R, Slater L, et al. Changes in the glomerular filtration rate of 27 cats with hyperthyroidism after treatment with radioactive iodine. Vet Rec 2007;161:711-715.  
  5. van Hoek I, Lefebvre HP, Peremans K, et al. Short- and long-term follow-up of glomerular and tubular renal markers of kidney function in hyperthyroid cats after treatment with radioiodine. Domest Anim Endocrinol 2009;36:45-56.  
  6. Syme H. Are methimazole trials really necessary? In: Little SE, ed. August's Consultations in Feline Internal Medicine: Elsevier, 2014;in press.
  7. Williams TL, Elliott J, Syme HM. Association of iatrogenic hypothyroidism with azotemia and reduced survival time in cats treated for hyperthyroidism. J Vet Intern Med 2010;24:1086-1092.  
  8. Peterson ME. Feline focus: Diagnostic testing for feline thyroid disease: hypothyroidism. Compendium 2013;35:E4. 
  9. Williams TL, Elliott J, Syme HM. Effect on renal function of restoration of euthyroidism in hyperthyroid cats with iatrogenic hypothyroidism. J Vet Intern Med 2014;28:1251-1255. 
  10. Bartges JW. Chronic kidney disease in dogs and cats. Vet Clin North Am Small Anim Pract 2012;42:669-692.
  11. Polzin DJ. Chronic kidney disease in small animals. Vet Clin North Am Small Anim Pract 2011;41:15-30. 
  12. Elliott J, Rawlings JM, Markwell PJ, et al. Survival of cats with naturally occurring chronic renal failure: effect of dietary management. J Small Anim Pract 2000;41:235-242.
  13. Williams TL, Peak KJ, Brodbelt D, et al. Survival and the development of azotemia after treatment of hyperthyroid cats. J Vet Intern Med 2010;24:863-869. 

Monday, September 29, 2014

Top Endocrine Publications of 2013: The Feline Thyroid Gland


In my eighth compilation of the canine and feline endocrine publications of 2013, I’m moving on to disorders of the feline thyroid gland.

Listed below are 26 papers published in 2013 that deal with a variety of thyroid gland topics of issues of clinical importance in cats.

These range from from studies of the duration of serum T4 suppression in cats treated with methimazole (1) to the results of a long-term follow-up study of cats treated with transdermal methimazole (2); and from case reports of methimazole or carbimazole-induced toxicity in cats (3,6,19) to the results of an online survey to determine owner experiences and opinions on the management of their hyperthyroid cats using oral anti-thyroid medications (5).

Other studies report the variability in iodine concentrations found in commercial cats foods in the USA (7) to investigation of the radioactivity in the excreta of hyperthyroid cats treated with radioiodine (8); from a comparison of computed tomography and scintigraphy for thyroid imaging in hyperthyroid cats (9) to a review of the clinical usefulness of an assay for measurement of circulating B-type natriuretic peptide (BNP) concentration in hyperthyroid cats (11); and from an overview of the diagnostic tests useful for confirming feline hyperthyroidism (4,12,13,15,17) and hypothyroidism (14) to a study of the effects of an iodine-restricted diet for management of cats with hyperthyroidism (22); from investigations of the pathophysiological mechanism for altered calcium homeostasis in hyperthyroid cats (24) to studies of the renin-angiotensin-aldosterone system activity in hyperthyroid cats with and without hypertension (25).

References:
  1. Boretti FS, Sieber-Ruckstuhl NS, Schafer S, et al. Duration of T4 suppression in hyperthyroid cats treated once and twice daily with transdermal methimazole. J Vet Intern Med 2013;27:377-381. 
  2. Boretti FS, Sieber-Ruckstuhl NS, Schafer S, et al. Transdermal application of methimazole in hyperthyroid cats: a long-term follow-up study. J Feline Med Surg 2013;16:453-459. 
  3. Bowlt K, Cattin I, Stewart J. Carbimazole-associated hypersensitivity vasculitis in a cat. J Small Anim Pract 2013; doi: 10.1111/jsap.12154. 
  4. Bruyette D. Feline hyperthyroidism: Diagnosis and therapeutic modalities. Today's Veterinary Practice 2013;3:25-30.
  5. Caney SM. An online survey to determine owner experiences and opinions on the management of their hyperthyroid cats using oral anti-thyroid medications. J Feline Med Surg 2013;15:494-502. 
  6. Castro Lopez J, Lloret A, Ravera I, et al. Pyogranulomatous mural folliculitis in a cat treated with methimazole. J Feline Med Surg 2013;16:527-531. 
  7. Edinboro CH, Pearce EN, Pino S, et al. Iodine concentration in commercial cat foods from three regions of the USA, 2008-2009. J Feline Med Surg 2013;15:717-724. 
  8. Lamb V, Gray J, Parkin T, et al. Measurement of the radioactivity in the excreta of cats treated with iodine-131 for hyperthyroidism. Vet Rec 2013;172:45. 
  9. Lautenschlaeger IE, Hartmann A, Sicken J, et al. Comparison between computed tomography and Tc-Pertechnetate scintigraphy characteristics of the thyroid gland in cats with hyperthyroidism. Vet Radiol Ultrasound 2013;54:666-673. 
  10. North DL. Uptake of 131-I in households of thyroid cancer patients. Health Phys 2013;104:434-436. 
  11. Oyama MA, Boswood A, Connolly DJ, et al. Clinical usefulness of an assay for measurement of circulating N-terminal pro-B-type natriuretic peptide concentration in dogs and cats with heart disease. J Am Vet Med Assoc 2013;243:71-82. 
  12. Paepe D, Verjans G, Duchateau L, et al. Routine health screening: findings in apparently healthy middle-aged and old cats. J Feline Med Surg 2013;15:8-19. 
  13. Peterson ME. More than just T4: Diagnostic testing for hyperthyroidism in cats. J Feline Med Surg 2013;15:765-777. 
  14. Peterson ME. Feline focus: Diagnostic testing for feline thyroid disease: hypothyroidism. Compend Contin Educ Vet 2013;35:E4. 
  15. Peterson ME. Feline focus: Diagnostic testing for feline thyroid disease: hyperthyroidism. Compend Contin Educ Vet 2013;35:E3. 
  16. Ramoo S, Bradbury L, Anderson G, et al. Sedation of hyperthyroid cats with subcutaneous administration of a combination of alfaxalone and butorphanol. Aust Vet J 2013;91:131-136. 
  17. Rasmussen SH, Andersen HH, Kjelgaard-Hansen M. Combined assessment of serum free and total T4 in a general clinical setting seemingly has limited potential in improving diagnostic accuracy of thyroid dysfunction in dogs and cats (Letter). Vet Clin Pathol 2014;43:1-3. 
  18. Sabatino BR, Rohrbach BW, Armstrong PJ, et al. Amino acid, iodine, selenium, and coat color status among hyperthyroid, Siamese, and age-matched control cats. J Vet Intern Med 2013;27:1049-1055. 
  19. Snead E, Kerr M, Macdonald V. Cutaneous lymphoid hyperplasia mimicking cutaneous lymphoma in a hyperthyroid cat. Can Vet J 2013;54:974-978. 
  20. Sparkes A. Health screening of cats: some timely justification. J Feline Med Surg 2013;15:5. 
  21. Taylor BE, Leibman NF, Luong R, et al. Detection of carcinoma micrometastases in bone marrow of dogs and cats using conventional and cell block cytology. Vet Clin Pathol 2013;42:85-91.
  22. van der Kooij M, Becvarova I, Meyer HP, et al. Effects of an iodine-restricted food on client-owned cats with hyperthyroidism. J Feline Med Surg 2013;14:491-498. 
  23. Whitehouse-Tedd KM, Cave NJ, Ugarte CE, et al. Isoflavone metabolism in domestic cats (Felis catus): Comparison of plasma metabolites detected after ingestion of two different dietary forms of genistein and daidzein. J Anim Sci 2013;91:1295-1306. 
  24. Williams TL, Elliott J, Berry J, et al. Investigation of the pathophysiological mechanism for altered calcium homeostasis in hyperthyroid cats. J Small Anim Pract 2013;54:367-373. 
  25. Williams TL, Elliott J, Syme HM. Renin-angiotensin-aldosterone system activity in hyperthyroid cats with and without concurrent hypertension. J Vet Intern Med 2013;27:522-529. 
  26. Wongbandue G, Jewgenow K, Chatdarong K. Effects of thyroxin (T4) and activin A on in vitro growth of preantral follicles in domestic cats. Theriogenology 2013;79:824-832.