આ MCQ મોડ્યુલ આના પર આધારિત છે: Endocrine Glands Hypothalamus Pituitary
Endocrine Glands Hypothalamus Pituitary
આ મૂલ્યાંકન આના પર આધારિત હશે: Endocrine Glands Hypothalamus Pituitary
મૂલ્યાંકન બનાવવામાં તેમની સામગ્રી સામેલ કરવા ચિત્રો, PDF અથવા Word દસ્તાવેજ અપલોડ કરો.
Endocrine Glands, Hypothalamus and the Pituitary Gland
You have already learnt that the neural system provides a point-to-point rapid coordination among organs. The neural coordination is fast but short-lived. As the nerve fibres do not innervate all cells of the body, and the cellular functions need to be continuously regulated, a special kind of coordination and integration has to be provided. This function is carried out by hormones. The neural system and the endocrine system jointly coordinate and regulate the physiological functions in the body.
Why a second system is unavoidable. Three limitations of neural coordination are named here, and each one is answered by hormones: it is short-lived (hormones persist), it reaches only wired cells (hormones travel in blood to every cell), and it cannot sustain continuous regulation (hormones can).
Endocrine Glands and Hormones
Endocrine glands lack ducts and are hence called ductless glands. Their secretions are called hormones.
The classical definition of a hormone was "a chemical produced by endocrine glands and released into the blood and transported to a distantly located target organ". The current scientific definition is broader: Hormones are non-nutrient chemicals which act as intercellular messengers and are produced in trace amounts.
The new definition covers a number of new molecules in addition to the hormones secreted by the organised endocrine glands. Invertebrates possess very simple endocrine systems with few hormones, whereas a large number of chemicals act as hormones and provide coordination in the vertebrates.
Read the new definition carefully. It drops three requirements of the old one — that the chemical come from an endocrine gland, that it travel in blood, and that the target be distant. That is exactly why the heart, kidney and gut can now be said to secrete hormones, as you will see in Part 4. What the definition keeps is that the chemical is non-nutrient, acts between cells, and is produced in trace amounts.
The Human Endocrine System
The endocrine glands and hormone producing diffused tissues/cells located in different parts of our body constitute the endocrine system.
The organised endocrine bodies in our body are:
- pituitary
- pineal
- thyroid
- adrenal
- pancreas
- parathyroid
- thymus
- gonads — testis in males and ovary in females
In addition to these, some other organs — e.g., gastrointestinal tract, liver, kidney, heart — also produce hormones.
The Hypothalamus
The hypothalamus is the basal part of diencephalon, forebrain, and it regulates a wide spectrum of body functions. It contains several groups of neurosecretory cells called nuclei which produce hormones. These hormones regulate the synthesis and secretion of pituitary hormones.
The hormones produced by the hypothalamus are of two types:
- the releasing hormones, which stimulate secretion of pituitary hormones;
- the inhibiting hormones, which inhibit secretions of pituitary hormones.
For example, a hypothalamic hormone called Gonadotrophin releasing hormone (GnRH) stimulates the pituitary synthesis and release of gonadotrophins. On the other hand, somatostatin from the hypothalamus inhibits the release of growth hormone from the pituitary.
These hormones, originating in the hypothalamic neurons, pass through axons and are released from their nerve endings. These hormones reach the pituitary gland through a portal circulatory system and regulate the functions of the anterior pituitary. The posterior pituitary is under the direct neural regulation of the hypothalamus.
Two quite different controls over one gland. The anterior pituitary is controlled chemically — hypothalamic hormones reach it through a portal circulatory system. The posterior pituitary is controlled neurally — it is under the direct neural regulation of the hypothalamus, and the two hormones it releases are actually synthesised by the hypothalamus and transported axonally to it. Confusing these two routes is a common examination error.
The Pituitary Gland
The pituitary gland is located in a bony cavity called sella tursica and is attached to hypothalamus by a stalk. It is divided anatomically into an adenohypophysis and a neurohypophysis.
Adenohypophysis consists of two portions, pars distalis and pars intermedia.
The pars distalis region of pituitary, commonly called anterior pituitary, produces six hormones: growth hormone (GH), prolactin (PRL), thyroid stimulating hormone (TSH), adrenocorticotrophic hormone (ACTH), luteinizing hormone (LH) and follicle stimulating hormone (FSH).
Pars intermedia secretes only one hormone called melanocyte stimulating hormone (MSH). However, in humans, the pars intermedia is almost merged with pars distalis.
Neurohypophysis (pars nervosa), also known as posterior pituitary, stores and releases two hormones called oxytocin and vasopressin, which are actually synthesised by the hypothalamus and are transported axonally to neurohypophysis.
Functions of the Pituitary Hormones
| Region | Hormone | Action |
|---|---|---|
| Pars distalis (anterior pituitary) | Growth hormone (GH) | Stimulates growth of the body. Over-secretion → gigantism; low secretion → pituitary dwarfism; excess in adults → acromegaly |
| Prolactin (PRL) | Regulates the growth of the mammary glands and formation of milk in them | |
| Thyroid stimulating hormone (TSH) | Stimulates the synthesis and secretion of thyroid hormones from the thyroid gland | |
| Adrenocorticotrophic hormone (ACTH) | Stimulates the synthesis and secretion of steroid hormones called glucocorticoids from the adrenal cortex | |
| Luteinizing hormone (LH) | A gonadotrophin. In males, stimulates synthesis and secretion of androgens from testis. In females, induces ovulation of fully mature graafian follicles and maintains the corpus luteum | |
| Follicle stimulating hormone (FSH) | A gonadotrophin. In males, FSH and androgens regulate spermatogenesis. In females, stimulates growth and development of the ovarian follicles | |
| Pars intermedia | Melanocyte stimulating hormone (MSH) | Acts on the melanocytes (melanin containing cells) and regulates pigmentation of the skin |
| Pars nervosa (posterior pituitary) | Oxytocin | Acts on the smooth muscles of our body and stimulates their contraction. In females, stimulates vigorous contraction of uterus at child birth and milk ejection from the mammary gland |
| Vasopressin (ADH) | Acts mainly at the kidney; stimulates resorption of water and electrolytes by the distal tubules, reducing loss of water through urine (diuresis) |
Disorders linked to pituitary hormones
| Disorder | Cause | Features |
|---|---|---|
| Gigantism | Over-secretion of GH | Abnormal growth of the body |
| Pituitary dwarfism | Low secretion of GH | Stunted growth |
| Acromegaly | Excess GH in adults, especially in middle age | Severe disfigurement (especially of the face); may lead to serious complications and premature death if unchecked. Hard to diagnose early and often goes undetected for many years until changes in external features become noticeable |
| Diabetes insipidus | Impairment affecting synthesis or release of ADH | Diminished ability of the kidney to conserve water, leading to water loss and dehydration |
Why timing decides the disorder. The same excess of the same hormone produces gigantism in a growing child but acromegaly in a middle-aged adult. The reason is the state of the bones: while the growth regions remain active the whole body lengthens, but once they have closed the bone can only thicken, so the change appears as disfigurement, especially of the face. A hormone's effect depends on what its target tissue is able to do at that moment.
On a sheet of paper write three column headings: Hypothalamus, Pituitary, Final target. Now place each of the following in the correct column and draw an arrow to whatever it acts on: GnRH, somatostatin, TSH, ACTH, LH, FSH, GH, thyroid gland, adrenal cortex, testis, ovary, glucocorticoids, androgens, oxytocin, vasopressin.
The backwards (inhibitory) arrow: somatostatin. Hypothalamic hormones are of two types — releasing hormones, which stimulate secretion of pituitary hormones, and inhibiting hormones, which inhibit them. Somatostatin from the hypothalamus inhibits the release of growth hormone from the pituitary, while GnRH stimulates the pituitary synthesis and release of gonadotrophins.
The two with no arrow leaving the pituitary as pituitary products: oxytocin and vasopressin. These are stored and released by the neurohypophysis but are actually synthesised by the hypothalamus and transported axonally to it. In a strict control diagram they originate in the hypothalamus column and merely pass through the posterior pituitary on their way to their targets — smooth muscle and the kidney respectively.
The general chain the exercise reveals: hypothalamus → anterior pituitary (via a portal circulatory system) → peripheral endocrine gland → that gland's own hormone. For example GnRH → LH and FSH → testis or ovary → androgens, estrogen and progesterone. Similarly TSH → thyroid → thyroid hormones, and ACTH → adrenal cortex → glucocorticoids. GH is the exception among the six trophic hormones in acting on somatic tissues directly rather than through another endocrine gland.
🎯 Interactive: Pituitary and Hypothalamic Hormones
Select a hormone or structure to see where it comes from and what it does.
🎯 Competency-Based Questions
Why it failed. Chemicals were discovered that behave exactly like hormones but violate one or more of the three classical requirements. The atrial wall of the heart secretes atrial natriuretic factor and the juxtaglomerular cells of the kidney secrete erythropoietin — neither the heart nor the kidney is an endocrine gland. Growth factors are secreted by several non-endocrine tissues. And some messengers act on cells close by rather than on a distantly located organ. A definition that excluded all of these would have to call them something other than hormones, without any functional justification.
The current definition: hormones are non-nutrient chemicals which act as intercellular messengers and are produced in trace amounts. It keeps three essentials — the chemical is not a nutrient, it carries a message between cells, and it works at trace concentration — while dropping the requirements about source, route and distance.
The lesson: definitions in biology follow function, not anatomy. The new definition covers a number of new molecules in addition to the hormones secreted by the organised endocrine glands.
Anterior pituitary hormones. Their secretion would fall drastically or become uncontrolled. The hypothalamic releasing and inhibiting hormones reach the pituitary gland through a portal circulatory system and regulate the functions of the anterior pituitary. Cut that route and the gland no longer receives its instructions, so GH, PRL, TSH, ACTH, LH and FSH can no longer be appropriately regulated. Downstream glands — thyroid, adrenal cortex and gonads — would in turn lose their trophic stimulation.
Posterior pituitary hormones. Their release would also fail, but for a different reason. Oxytocin and vasopressin are actually synthesised by the hypothalamus and are transported axonally to the neurohypophysis, which merely stores and releases them. Cutting the stalk severs those axons, so the hormones can no longer arrive. The posterior pituitary is under the direct neural regulation of the hypothalamus.
The difference: in the anterior lobe the loss is of a chemical signal to a gland that still makes its own hormones; in the posterior lobe the loss is of the hormones themselves, which were never made there. Clinically, one would expect dehydration from lack of ADH (diabetes insipidus) alongside failure of the thyroid, adrenal cortex and gonads.
Hormone: growth hormone (GH), from the pars distalis of the pituitary.
The child — gigantism. Over-secretion of GH stimulates abnormal growth of the body. In a child whose bones can still lengthen, the whole frame grows excessively tall.
The man — acromegaly. Excess secretion of growth hormone in adults, especially in middle age, can result in severe disfigurement (especially of the face). Since the bones can no longer lengthen, the tissues that remain responsive thicken and enlarge instead — hence the coarsening face and enlarged hands.
Why the difference: a hormone does not decide the outcome by itself; the outcome depends on what the target tissue is capable of doing when the hormone arrives. This is also why acromegaly is clinically dangerous: NCERT notes it may lead to serious complications and premature death if unchecked, and that it is hard to diagnose in the early stages and often goes undetected for many years until changes in external features become noticeable.
Diabetes insipidus. The defect is an impairment affecting the synthesis or release of ADH (vasopressin). Vasopressin acts mainly at the kidney and stimulates resorption of water and electrolytes by the distal tubules, thereby reducing loss of water through urine. Without adequate ADH the kidney has a diminished ability to conserve water, so large volumes of dilute urine are passed, leading to water loss and dehydration. Blood glucose is normal and no glucose appears in the urine.
Diabetes mellitus. The defect lies in insulin, from the β-cells of the Islets of Langerhans of the pancreas. Prolonged hyperglycemia leads to this complex disorder, which is associated with loss of glucose through urine and the formation of harmful compounds known as ketone bodies. Here the large urine volume is a consequence of glucose being lost in the urine and carrying water with it.
The distinction in one line: insipidus is a water problem caused by a pituitary hormone; mellitus is a glucose problem caused by a pancreatic hormone. The shared name reflects only the shared symptom of copious urine.
The pattern. TSH stimulates the thyroid gland; ACTH stimulates the adrenal cortex; LH and FSH stimulate gonadal activity and are hence called gonadotrophins; prolactin acts on the mammary glands. Growth hormone is the one that acts chiefly on the somatic tissues of the body at large, stimulating growth. This is why the pars distalis hormones are described as trophic hormones — each one drives the growth or activity of another tissue.
Advantages of a hierarchy.
(i) Coordination. A single controller can adjust several glands together, so the body's responses to a situation (growth, stress, reproduction) are consistent rather than contradictory.
(ii) Amplification. A trace of a hypothalamic hormone releases more pituitary hormone, which releases still more of the peripheral gland's hormone. A small signal can thus produce a large, body-wide effect — which is what allows hormones to work at trace amounts.
(iii) Regulation at more than one level. With the hypothalamus above the pituitary and the pituitary above the peripheral glands, control can be exercised at either step, and the hypothalamus's ability to send inhibiting as well as releasing hormones lets output be turned down as well as up.
🧠 Assertion–Reason Questions
For each pair, decide whether both statements are true and whether the reason correctly explains the assertion.
Both A and R are true, and R is the correct explanation of A.
The name records the anatomy: with no duct to carry the secretion to a cavity or surface, the hormone enters the circulation instead — which is what allows it to act as an intercellular messenger at a distance.
A is partly true but R is false.
The neurohypophysis (pars nervosa) stores and releases oxytocin and vasopressin, but it does not synthesise them: they are actually synthesised by the hypothalamus and are transported axonally to the neurohypophysis. So the posterior pituitary is a storage and release site, not a site of synthesis.
Both A and R are true, and R is the correct explanation of A.
In males LH stimulates the synthesis and secretion of androgens from the testis, and FSH with androgens regulates spermatogenesis. In females LH induces ovulation of fully mature graafian follicles and maintains the corpus luteum, while FSH stimulates the growth and development of the ovarian follicles.