Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs....

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Animal Hormones Chemical Messaging

Transcript of Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs....

Page 1: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

Animal Hormones

Chemical Messaging

Page 2: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

Hormones

• component of homeostatic control

– slower signals (vs. nervous signals)

• secreted by endocrine cells

• diffuse to blood vessels

• delivered by circulatory system

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hormone deliveryFigure 42.1

Page 4: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

Hormones

• component of homeostatic control

– broadcast signals

• dispersed throughout the body

• received by target cells with receptors

• response is determined by target cells

• e.g. epinephrine (adrenaline) targets

heart liver

blood vessels adipose tissues

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Hormones

• cellular mechanisms of control

– hormone release

• nervous system control

• feedback control

– receptor availability

• genetic control

• feedback control

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multiple receptors and transduction pathways

Page 7: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

Hormones

• cellular mechanisms of control

– signal transduction

• pathway - specificity

• cascade - amplification

– hormone half-life

Page 8: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

Hormones

• component of homeostatic control

– controlled responses include

• developmental responses

• physiological responses

• behavioral responses

Page 9: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

autocrine hormones bind source cellsFigure 42.1

Page 10: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

Hormones

• not all hormones travel far

– autocrine hormones bind source cell

– paracrine hormones bind nearby cells

• histamine released by mast cells

• interleukin-1 released by macrophage cells

• neurotransmitters

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neurotransmitters are paracrine signalsFigure 42.1

Page 12: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

Hormones

• identical hormones are found in different animals

– roles may be different

• stimulus may differ

• target cells may differ

• responses may differ

– e.g. cAMP

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Hormones

• endocrine cells may be single or organized into an organ (gland)

• different endocrine cells may be present in an endocrine gland

• in humans, nine endocrine glands make up the endocrine system

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glands of the human

endocrine system

Figure 42.2

Page 15: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

an invertebrate example

• insect development

– larval stages - instars

separated by

– shedding of rigid exoskeleton - molt

Page 16: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

an invertebrate example

• Rhodnius

– 5 molts

– molts are triggered by blood meals

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Rhodniusheadless molting

Figure 42.3

Page 18: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

transfer from one individual to another

Figure 42.3

Page 19: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

an invertebrate example

• Rhodnius

– two hormones trigger molting

• brain hormone

–produced in brain

–stored in corpora cardiaca

–released by blood meal stimulus

Page 20: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

an invertebrate example

• Rhodnius

– two hormones trigger molting

• ecdysone

–produced in prothoracic gland

–released in response to brain hormone

–diffuses to target tissues

–stimulates molting

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molting and development are not equivalent

• Rhodnius– proper development is controlled by another

hormone– corpora allata produce juvenile hormone – if corpora allata are intact, instars molt to

instars– 5th instar linked to 4th instar molts to 6th

instar rather than adult

Page 22: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

brain hormone, ecdysone, juvenile

hormone interaction

is common among insects -

complete metamorphosis

Figure 42.4

Page 23: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

human endocrine system

• pituitary gland - master gland– attached to hypothalamus– links nervous system with endocrine system

• produces & secretes hormonesor

• secretes brain hormones– controls many endocrine glands

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human endocrine system

• pituitary gland - master gland– two-part gland

• posterior pituitary–outgrowth of the hypothalamus–stores & secretes neurohormones

• antidiuretic hormone (ADH)• oxytocin

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posterior pituitaryFigure 42.5

Page 26: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

human endocrine system

• pituitary gland - master gland– two-part gland

• anterior pituitary–outgrowth of mouth cavity–produces and secretes several hormones–responds to hypothalamic control

»neurohormones to portal vessels»portal vessels to ant. pit.»release or inhibit ant. pit. secretion

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anterior pituitary

Figure 42.7

Page 28: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

human endocrine system

• pituitary gland - master gland– two-part gland

• anterior pituitary–four tropic hormones control endocrine

glands»thyrotropin»adrenocorticotropin»luteinizing hormone»follicle-stimulating hormone

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human endocrine system

• pituitary gland - master gland– two-part gland

• anterior pituitary–five non-tropic hormones or groups

»growth hormone»prolactin»melanocyte-stimulating hormone»endorphins & enkephalins

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global control of hormonal release

• hypothalamus receives information• hypothalamus stimulates or inhibits pituitary• pituitary secretion controls effectors directly or

indirectly• negative feedback loops convey internal

information to hypothalamus or pituitary

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negative feedback control of hormone

productionFigure 42.8

Page 32: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

control of thyroxine production

• thyroid gland produces thyroxine (T4 & T3)• thyroxine

– elevates cellular metabolic rate– promotes use of carbohydrate over fat– increases basal metabolic rate in response to

prolonged cold– promotes uptake of amino acids/protein

synthesis during development

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control of thyroxine production• failure of control can produce goiter

– hyperthyroidism• autoimmune stimulation of thyrotropin receptor

– hypothyroidism• e.g. iodine deficiency• loss of feedback inhibition

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thyroid & parathyroid glands

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control of blood calcium

• calcitonin– produced by thyroid gland– reduces level of circulating calcium

• reduces osteoclast activity• stimulates osteoblast activity

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control of blood calcium

• parathyroid hormone– produced by parathyroid glands– stimulated by low blood calcium– stimulates osteoclasts– increases calcium reabsorption by kidneys– enhances dietary uptake of calcium

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control of blood calcium

• antagonistic activities of pairs of hormones such as calcitonin and parathyroid hormone are common among homeostatic regulatory systems

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antagonistic activities of calcitonin and parathyroid hormone balance

blood calciumFigure 42.9

Page 39: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

control of blood glucose

• insulin – produced by islet of Langerhans cells in the

pancreas– produced when blood glucose is high– stimulates target cells to

• take up glucose• synthesize glycogen• synthesize fat

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control of blood glucose

• glucagon– produced in other islet cells– produced when blood glucose is low– stimulates liver to break down glycogen

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control of blood glucose

• antagonistic activities of insulin and glucagon maintain glucose at set point

• failure of control may lead to diabetes– when insulin or its receptors are absent, cells

use fat and proteins for fuel

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control of blood glucose

• somatostatin overrides steady state control– produced in pancreas– response to rapid glucose/amino acid rise– inhibits insulin and glucagon release– reduces digestive activity of gut– increases time of absorption/use of dietary

nutrients– also produced by hypothalamus to inhibit

thyrotropin & growth hormone release

Page 43: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

the adrenal glandsFigure 42.10

Page 44: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

adrenal glands

• located on top of kidneys• two parts

• adrenal medulla–produces epinephrine & norepinephrine–derived from nervous tissue–under nervous system control–mediates the “fight-or-flight” response

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adrenal glands

• located on top of kidneys• two parts

• adrenal cortex–produces several corticosteroid

hormones–under control of adrenocorticotropin–slower to respond than adrenal medulla

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corticosteroids come from cholesterol

Figure 42.11

Page 47: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

adrenal cortex

• corticosteroids are derived from cholesterol– mineralocorticoids affect

• ionic balance of extracellular fluids• aldosterone causes kidney to

–conserve Na+

–excrete K+

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adrenal cortex

• corticosteroids are derived from cholesterol– glucocorticoids affect

• blood glucose• fat, protein, carbohydrate metabolism• cortisol

–shifts non f-or-f cells to fat/protein catabolism

–blocks immune system function–“slow stress response”

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adrenal cortex

• corticosteroids are derived from cholesterol– cortisol

• responds to adrenocoritcotropin (ACTH)• ACTH-releasing hormone produced by hypothalamus

• negative feedback by cortisol reduces ACTH-releasing hormone

• ability to recover from stress can decrease with age

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adrenal cortex

• corticosteroids are derived from cholesterol– sex steroids affect

• sexual development• reproductive activities

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sex steroids

• produced predominantly in gonads– progesterone & estrogens (estradiol)

• female sex steroids– androgens (testosterone)

• male sex steroid

Page 52: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

sex steroids

• mediate development of reproductive organs in fetus

• mediate sexual maturation & development of secondary sexual characteristics

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sex steroids

• sex steroid control circuit– in males, LH causes androgen production in

testes– in females, LH, FSH, cause female sex

steroid production in ovaries

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sex steroids

• GnRH stimulates gonadotropin production

– luteinizing hormone

– follicle-stimulating hormone• sex steroids limit GnRH production by

negative feedback• sensitivity of GnRH-producing cells to sex

steroids decreases to initiate puberty

Page 55: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

Take Home

• hormone secretion is under multi-level control– hypothalamus collects external information– pituitary responds to hypothalamus– pituitary controls many functions directly or

through other endocrine glands– many endocrine functions are controlled by

feedback mechanisms– many effectors are controlled by the

antagonistic activities of two or more hormones

Page 56: Animal Hormones Chemical Messaging. Hormones component of homeostatic control –slower signals (vs. nervous signals) secreted by endocrine cells diffuse.

Table 42.1