Baroreflex gain and time of pressure decay at different body temperatures in the tegu lizard, Salvator merianae.
Ectotherms may experience large body temperature (Tb) variations. Higher Tb have been reported to increase baroreflex sensitivity in ectotherm tetrapods. At lower Tb, pulse interval (PI) increases and diastolic pressure decays for longer, possibly resulting in lower end-diastolic pressures and mean...
Main Authors: | , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Public Library of Science (PLoS)
2020-01-01
|
Series: | PLoS ONE |
Online Access: | https://doi.org/10.1371/journal.pone.0242346 |
id |
doaj-e0f1d909356746eaae1b092fe6c70b0a |
---|---|
record_format |
Article |
spelling |
doaj-e0f1d909356746eaae1b092fe6c70b0a2021-03-04T12:28:03ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-011511e024234610.1371/journal.pone.0242346Baroreflex gain and time of pressure decay at different body temperatures in the tegu lizard, Salvator merianae.Renato FilogonioKarina F OrsoliniGustavo M OdaHans MalteCléo A C LeiteEctotherms may experience large body temperature (Tb) variations. Higher Tb have been reported to increase baroreflex sensitivity in ectotherm tetrapods. At lower Tb, pulse interval (PI) increases and diastolic pressure decays for longer, possibly resulting in lower end-diastolic pressures and mean arterial pressures (Pm). Additionally, compensatory baroreflex-related heart rate modulation (i.e. the cardiac branch of the baroreflex response) is delayed due to increased PI. Thus, low Tb is potentially detrimental, leading to cardiovascular malfunctioning. This raises the question on how Pm is regulated in such an adverse condition. We investigated the baroreflex compensations that enables tegu lizards, Salvator merianae, to maintain blood pressure homeostasis in a wide Tb range. Lizards had their femoral artery cannulated and pressure signals recorded at 15°C, 25°C and 35°C. We used the sequence method to analyse the heart rate baroreflex-related corrections to spontaneous pressure fluctuations at each temperature. Vascular adjustments (i.e. the peripheral branch) were assessed by calculating the time constant for arterial pressure decay (τ)-resultant from the action of both vascular resistance and compliance-by fitting the diastolic pressure descent to the two-element Windkessel equation. We observed that at lower Tb, lizards increased baroreflex gain at the operating point (Gop) and τ, indicating that the diastolic pressure decays at a slower rate. Gop normalized to Pm and PI, as well as the ratio τ/PI, did not change, indicating that both baroreflex gain and rate of pressure decay are adjusted according to PI lengthening. Consequently, pressure parameters and the oscillatory power fraction (an index of wasted cardiac energy) were unaltered by Tb, indicating that both Gop and τ modulation are crucial for cardiovascular homeostasis.https://doi.org/10.1371/journal.pone.0242346 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Renato Filogonio Karina F Orsolini Gustavo M Oda Hans Malte Cléo A C Leite |
spellingShingle |
Renato Filogonio Karina F Orsolini Gustavo M Oda Hans Malte Cléo A C Leite Baroreflex gain and time of pressure decay at different body temperatures in the tegu lizard, Salvator merianae. PLoS ONE |
author_facet |
Renato Filogonio Karina F Orsolini Gustavo M Oda Hans Malte Cléo A C Leite |
author_sort |
Renato Filogonio |
title |
Baroreflex gain and time of pressure decay at different body temperatures in the tegu lizard, Salvator merianae. |
title_short |
Baroreflex gain and time of pressure decay at different body temperatures in the tegu lizard, Salvator merianae. |
title_full |
Baroreflex gain and time of pressure decay at different body temperatures in the tegu lizard, Salvator merianae. |
title_fullStr |
Baroreflex gain and time of pressure decay at different body temperatures in the tegu lizard, Salvator merianae. |
title_full_unstemmed |
Baroreflex gain and time of pressure decay at different body temperatures in the tegu lizard, Salvator merianae. |
title_sort |
baroreflex gain and time of pressure decay at different body temperatures in the tegu lizard, salvator merianae. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2020-01-01 |
description |
Ectotherms may experience large body temperature (Tb) variations. Higher Tb have been reported to increase baroreflex sensitivity in ectotherm tetrapods. At lower Tb, pulse interval (PI) increases and diastolic pressure decays for longer, possibly resulting in lower end-diastolic pressures and mean arterial pressures (Pm). Additionally, compensatory baroreflex-related heart rate modulation (i.e. the cardiac branch of the baroreflex response) is delayed due to increased PI. Thus, low Tb is potentially detrimental, leading to cardiovascular malfunctioning. This raises the question on how Pm is regulated in such an adverse condition. We investigated the baroreflex compensations that enables tegu lizards, Salvator merianae, to maintain blood pressure homeostasis in a wide Tb range. Lizards had their femoral artery cannulated and pressure signals recorded at 15°C, 25°C and 35°C. We used the sequence method to analyse the heart rate baroreflex-related corrections to spontaneous pressure fluctuations at each temperature. Vascular adjustments (i.e. the peripheral branch) were assessed by calculating the time constant for arterial pressure decay (τ)-resultant from the action of both vascular resistance and compliance-by fitting the diastolic pressure descent to the two-element Windkessel equation. We observed that at lower Tb, lizards increased baroreflex gain at the operating point (Gop) and τ, indicating that the diastolic pressure decays at a slower rate. Gop normalized to Pm and PI, as well as the ratio τ/PI, did not change, indicating that both baroreflex gain and rate of pressure decay are adjusted according to PI lengthening. Consequently, pressure parameters and the oscillatory power fraction (an index of wasted cardiac energy) were unaltered by Tb, indicating that both Gop and τ modulation are crucial for cardiovascular homeostasis. |
url |
https://doi.org/10.1371/journal.pone.0242346 |
work_keys_str_mv |
AT renatofilogonio baroreflexgainandtimeofpressuredecayatdifferentbodytemperaturesinthetegulizardsalvatormerianae AT karinaforsolini baroreflexgainandtimeofpressuredecayatdifferentbodytemperaturesinthetegulizardsalvatormerianae AT gustavomoda baroreflexgainandtimeofpressuredecayatdifferentbodytemperaturesinthetegulizardsalvatormerianae AT hansmalte baroreflexgainandtimeofpressuredecayatdifferentbodytemperaturesinthetegulizardsalvatormerianae AT cleoacleite baroreflexgainandtimeofpressuredecayatdifferentbodytemperaturesinthetegulizardsalvatormerianae |
_version_ |
1714802678146531328 |