Literature DB >> 21076017

Cardiovascular responses elicited by a new endogenous angiotensin in the nucleus tractus solitarius of the rat.

Vineet C Chitravanshi1, Hreday N Sapru.   

Abstract

Cardiovascular effects of angiotensin-(1-12) [ANG-(1-12)] were studied in the medial nucleus of the tractus solitarius (mNTS) in anesthetized, artificially ventilated, adult male Wistar rats. Microinjections (100 nl) of ANG-(1-12) (0.06 mM) into the mNTS elicited maximum decreases in mean arterial pressure (MAP; 34 ± 5.8 mmHg) and heart rate (HR; 39 ± 3.7 beats/min). Bilateral vagotomy abolished ANG-(1-12)-induced bradycardia. Efferent greater splanchnic nerve activity was decreased by microinjections of ANG-(1-12) into the mNTS. Blockade of ANG type 1 receptors (AT(1)Rs; using ZD-7155 or L-158,809), but not ANG type 2 receptors (AT(2)Rs; using PD-123319), significantly attenuated ANG-(1-12)-induced cardiovascular responses. Simultaneous inhibition of both angiotensin-converting enzyme (ACE; using captopril) and chymase (using chymostatin) completely blocked the effects of ANG-(1-12). Microinjections of A-779 [ANG-(1-7) antagonist] did not attenuate ANG-(1-12)-induced responses. Pressure ejection of ANG-(1-12) (0.06 mM, 2 nl) caused excitation of barosensitive mNTS neurons, which was blocked by prior application of the AT(1)R antagonist. ANG-(1-12)-induced excitation of mNTS neurons was also blocked by prior sequential applications of captopril and chymostatin. These results indicate that 1) microinjections of ANG-(1-12) into the mNTS elicited depressor and bradycardic responses by exciting barosensitive mNTS neurons; 2) the decreases in MAP and HR were mediated via sympathetic and vagus nerves, respectively; 3) AT(1)Rs, but not AT(2)Rs, mediated these actions of ANG-(1-12); 4) the responses were mediated via the conversion of ANG-(1-12) to ANG II and both ACE and chymase were involved in this conversion; and 5) ANG-(1-7) was not one of the metabolites of ANG-(1-12) in the mNTS.

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Year:  2010        PMID: 21076017      PMCID: PMC3023243          DOI: 10.1152/ajpheart.00861.2010

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  43 in total

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Review 2.  The sympathetic control of blood pressure.

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4.  Cardiovascular responses and neurotransmitter changes during blockade of angiotensin II receptors within the ventrolateral medulla.

Authors:  Dipan Patel; Mark Böhlke; Siripan Phattanarudee; Shruti Kabadi; Timothy J Maher; Ahmmed Ally
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5.  Baroreceptor reflex modulation by circulating angiotensin II is mediated by AT1 receptors in the nucleus tractus solitarius.

Authors:  Peter S P Tan; Suzanne Killinger; Jouji Horiuchi; Roger A L Dampney
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2007-09-12       Impact factor: 3.619

6.  Cardiovascular function of a glutamatergic projection from the hypothalamic paraventricular nucleus to the nucleus tractus solitarius in the rat.

Authors:  T Kawabe; V C Chitravanshi; K Kawabe; H N Sapru
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7.  Localization of the novel angiotensin peptide, angiotensin-(1-12), in heart and kidney of hypertensive and normotensive rats.

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8.  Cardiovascular responses to microinjections of urocortin 3 into the nucleus tractus solitarius of the rat.

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Authors:  Aaron J Trask; Jewell A Jessup; Mark C Chappell; Carlos M Ferrario
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Review 10.  New angiotensins.

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  13 in total

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Review 3.  Angiotensin peptides and central autonomic regulation.

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Review 5.  Intracrine angiotensin II functions originate from noncanonical pathways in the human heart.

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Review 6.  An evolving story of angiotensin-II-forming pathways in rodents and humans.

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7.  Cardiovascular effect of angiotensin-(1-12) in the caudal ventrolateral medullary depressor area of the rat.

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8.  Angiotensin II's role in sodium lactate-induced panic-like responses in rats with repeated urocortin 1 injections into the basolateral amygdala: amygdalar angiotensin receptors and panic.

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9.  Primacy of angiotensin converting enzyme in angiotensin-(1-12) metabolism.

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Journal:  Am J Physiol Heart Circ Physiol       Date:  2013-06-28       Impact factor: 4.733

Review 10.  Role of the hypothalamic arcuate nucleus in cardiovascular regulation.

Authors:  Hreday N Sapru
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