Hashimoto thyroiditis

Last updated: November 01, 2022

Hashimoto thyroiditis

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6100

Anatomy of the thyroid and parathyroid glands
Endocrine system anatomy and physiology
Hunger and satiety
Oxytocin and prolactin
Growth hormone and somatostatin
Antidiuretic hormone
Thyroid hormones
Pituitary adenoma
Gigantism
Acromegaly
Constitutional growth delay
Pituitary adenomas and pituitary hyperfunction: Clinical
Hypopituitarism
Hypopituitarism: Clinical
Hypopituitarism: Pathology review
Pituitary apoplexy
Sheehan syndrome
Diabetes insipidus
Prolactinoma
Pituitary gland histology
Somatostatin
Hyperprolactinemia
Diabetes insipidus and SIADH: Pathology review
Achondroplasia
Growth hormone deficiency
Pharyngeal arches, pouches, and clefts
Thyroid and parathyroid gland histology
Development of the tongue
Fascia and spaces of the neck
Superficial structures of the neck: Cervical plexus
Deep structures of the neck: Root of the neck
Superficial structures of the neck: Anterior triangle
Deep structures of the neck: Prevertebral muscles
Superficial structures of the neck: Posterior triangle
Parathyroid hormone
Hyperthyroidism: Clinical
Hypothyroidism: Pathology review
Hyperthyroidism: Pathology review
Graves disease
Hypothyroidism
Hyperthyroidism
Toxic multinodular goiter
Hypothyroidism and thyroiditis: Clinical
Iodine deficiency
Hashimoto thyroiditis
Riedel thyroiditis
Thyroid nodules and thyroid cancer: Clinical
Thyroid nodules and thyroid cancer: Pathology review
Thyroid cancer
Subacute granulomatous thyroiditis
Postpartum thyroiditis
Euthyroid sick syndrome
Cell signaling pathways
Pituitary tumors: Pathology review
Parathyroid conditions and calcium imbalance: Clinical
Hyperthyroidism medications
Hypothyroidism medications
Parathyroid disorders and calcium imbalance: Pathology review
Hypoparathyroidism
Hypocalcemia
DiGeorge syndrome
Hyperparathyroidism
Bone remodeling and repair
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Glucagon
Diabetes mellitus: Pathology review
Tubular reabsorption of glucose
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Zollinger-Ellison syndrome
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Synthesis of adrenocortical hormones
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Cholesterol metabolism
Adrenal gland histology
Primary adrenal insufficiency
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Adrenal insufficiency: Pathology review
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Delayed puberty

Transcript

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Hashimoto’s thyroiditis, named after the Japanese physician Hakaru Hashimoto who first described it, belongs to a group of disorders where there’s some form of inflammation “-itis” of the thyroid gland.

It’s basically an autoimmune destruction of the thyroid gland, which typically progresses gradually to hypothyroidism, or state of too low “hypo-“ thyroid hormones.

In fact, Hashimoto’s thyroiditis is the most common cause of hypothyroidism in areas of the world where dietary iodine, the basic structural element of thyroid hormones, is sufficient.

Normally, the hypothalamus, which is located at the base of the brain, secretes thyrotropin-releasing hormone, or ΤRH, into the hypophyseal portal system - which is a network of capillaries linking the hypothalamus to the anterior pituitary.

The anterior pituitary then releases a hormone of its own, called thyroid-stimulating hormone, thyrotropin or simply TSH.

TSH stimulates the thyroid gland which is a gland located in the neck that looks like two thumbs hooked together in the shape of a “V”.

If we zoom into the thyroid gland, we’ll find thousands of follicles, which are small hollow spheres whose walls are lined with follicular cells, and are separated by a small amount of connective tissue.

Follicular cells convert thyroglobulin, a protein found in follicles, into two iodine-containing hormones, triiodothyronine or T3, and thyroxine or T4.

Once released from the thyroid gland, these hormones enter the blood and bind to circulating plasma proteins.

Only a small amount of T3 and T4 will travel unbound in the blood, and these two hormones get picked up by nearly every cell in the body.

Once inside the cell T4 is mostly converted into T3, and it can exert its effect. T3 speeds up the basal metabolic rate.

So as an example, they might produce more proteins and burn up more energy in the form of sugars and fats. It’s as if the cells are in a bit of frenzy.

T3 increases cardiac output, stimulates bone resorption - thinning out the bones, and activates the sympathetic nervous system, the part of the nervous system responsible for our ‘fight-or-flight’ response.

Thyroid hormone is important - and the occasional increase is like getting a boost to fight off a zombie or to stay warm during a snowstorm!

Thyroid hormones are also involved in a number of other things, like controlling sebaceous and sweat gland secretion, hair follicle growth, and regulating proteins and mucopolysaccharide synthesis by skin fibroblasts.

For all this to work properly, the levels of thyroid hormones have to stay within the normal range.

To do that, the body uses negative feedback, which means that low levels of thyroid hormones tell the hypothalamus and pituitary gland to increase their secretion of TRH and TSH, respectively.

More TRH increase TSH production in the pituitary and the thyroid gland gets more stimulation to make thyroid hormones, and eventually, T3 and T4 levels go back up to the normal range again.

However, whenever there’s increased TRH, the pituitary gland also gets stimulated to produce more prolactin, whose job is to stimulate breast milk production and inhibit ovulation, which is when an egg cell is released from the ovary, and inhibit spermatogenesis, which is the development of sperm cells.

Now, Hashimoto’s thyroiditis is an autoimmune disease, meaning that the immune system goes rogue and starts attacking our own follicular cells in the thyroid.

The exact trigger for this response is unknown, but there does seem to be a genetic component.

For example, mutations in specific human leukocyte antigen genes called HLA-DR3 and HLA-DR5 are associated with developing Hashimoto’s thyroiditis.

Due to these susceptibility genes, immune cells sometimes are not “clever” enough, so they are not “clever” enough and confuse normal antigens from the thyroid gland with antigens of foreign invaders like viruses, simply because they look similar.

This process is called molecular mimicry, because from the perspective of the immune cells, a host protein is mimicking a foreign protein.

When our own proteins triggers an immune response, that protein is called an autoantigen.

So, these autoantigens get picked up by antigen- presenting cells, and get carried to a nearby lymph node to activate CD4+ T-helper cells.

T-helper cells stimulate the B-cells in the lymph node to start proliferating and differentiate into plasma cells, which produce specific auto-antibodies against these self-antigens.

In Hashimoto’s thyroiditis, these plasma cells and T- helper cells enter the circulation and reach the thyroid gland.

Once there, plasma cells make antibodies against thyroid peroxidase, thyroglobulin, or TSH receptors.

Key Takeaways

Hashimoto thyroiditis is a type of autoimmune disease that attacks and destroys the thyroid gland. This can cause hypothyroidism, which can lead to a wide range of symptoms, such as tiredness, weight gain, depression, and changes in your menstrual cycle. The cause of hashimoto's thyroiditis is unknown, but it's thought to be caused by a combination of genetic and environmental factors.

Sources

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  2. "Harrison's Principles of Internal Medicine, Twentieth Edition (Vol.1 & Vol.2)" McGraw-Hill Education / Medical (2018)
  3. "Pathophysiology of Disease: An Introduction to Clinical Medicine 8E" McGraw-Hill Education / Medical (2018)
  4. "CURRENT Medical Diagnosis and Treatment 2020" McGraw-Hill Education / Medical (2019)
  5. "Harrison's Endocrinology, 4E" McGraw-Hill Education / Medical (2016)
  6. "Immune Disorders in Hashimoto’s Thyroiditis: What Do We Know So Far?" Journal of Immunology Research (2015)
  7. "Hashimoto’s Thyroiditis: History and Future Outlook" Hormones (2013)