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成年去大脑大鼠的呼吸周期计时与快速吸气放电节律

Respiratory cycle timing and fast inspiratory discharge rhythms in the adult decerebrate rat.

作者信息

Marchenko Vitaliy, Granata Antonio R, Cohen Morton I

机构信息

Department of Physiology and Biophysics, Albert Einstein College of Medicine, Bronx, New York 10461, USA.

出版信息

Am J Physiol Regul Integr Comp Physiol. 2002 Oct;283(4):R931-40. doi: 10.1152/ajpregu.00117.2002.

Abstract

In supracollicular decerebrate paralyzed adult rats, neural respiration was monitored by bilateral phrenic recordings. In the study of respiratory cycle timing, the effects of vagal afferent input (lung inflation) on respiratory phase durations resembled those seen in decerebrate cats. 1) Withholding lung inflation during neural inspiration (I) produced lengthening of I phase duration by 46% (mean, n = 11). 2) Maintaining lung inflation during neural expiration (E) produced lengthening of E phase duration by 112% (mean, n = 4). In the study of fast rhythms in inspiratory discharges, phrenic nerve autospectra and bilateral (left-right) phrenic coherences in 16 rats revealed two types of fast rhythm: 1) high-frequency oscillation (HFO), which had significant coherence peaks (n = 9, range 106-160 Hz, mean 132 Hz); and 2) medium-frequency oscillation (MFO), which had autospectral peaks but no distinct coherence peaks (n = 11, range 46-96 Hz, mean 66 Hz). These rhythms resembled MFOs and HFOs in the decerebrate cat, but the modal frequency range was about twice as large. In addition, these frequency values differed markedly from the 20-40 Hz of the rhythms found in earlier studies in neonatal in vitro preparations; the difference may be due to developmental immaturity.

摘要

在中脑上丘去大脑麻痹的成年大鼠中,通过双侧膈神经记录来监测神经呼吸。在呼吸周期定时的研究中,迷走神经传入输入(肺充气)对呼吸相持续时间的影响类似于在去大脑猫中观察到的情况。1)在神经吸气(I)期间停止肺充气会使I相持续时间延长46%(平均值,n = 11)。2)在神经呼气(E)期间保持肺充气会使E相持续时间延长112%(平均值,n = 4)。在吸气放电快速节律的研究中,16只大鼠的膈神经自谱和双侧(左右)膈神经相干性显示出两种快速节律:1)高频振荡(HFO),其具有显著的相干峰(n = 9,范围106 - 160 Hz,平均132 Hz);2)中频振荡(MFO),其具有自谱峰但没有明显的相干峰(n = 11,范围46 - 96 Hz,平均66 Hz)。这些节律类似于去大脑猫中的MFO和HFO,但模态频率范围大约是其两倍。此外,这些频率值与早期新生儿体外制备研究中发现的20 - 40 Hz节律明显不同;这种差异可能是由于发育不成熟所致。

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