Differential control of sympathetic outflow

被引:281
作者
Morrison, SF [1 ]
机构
[1] Northwestern Univ, Sch Med, Dept Physiol, Chicago, IL 60611 USA
关键词
baroreceptor reflex; chemoreceptor reflex; thermoregulation; arterial pressure; cutaneous circulation; adrenal medulla; brown adipose tissue; periaqueductal gray; renal sympathetic nerve; vasoconstriction;
D O I
10.1152/ajpregu.2001.281.3.R683
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
With advances in experimental techniques, the-early views of the sympathetic nervous system as a monolithic effector activated globally in situations requiring a rapid and aggressive response to life-threatening danger have been eclipsed by an organizational model featuring an extensive array of functionally specific output channels that can be simultaneously activated or inhibited in combinations that result in the patterns of autonomic activity supporting behavior and mediating homeostatic reflexes. With this perspective, the defense response is but one of the many activational states of the central autonomic network. This review summarizes evidence for the existence of tissue-specific sympathetic output pathways, which are likely to include distinct populations of premotor neurons whose target specificity could be assessed using the functional fingerprints developed from characterizations of postganglionic efferents to known targets. The differential responses in sympathetic outflows to stimulation of reflex inputs suggest that the circuits regulating the activity of sympathetic premotor neurons must have parallel access to groups of premotor neurons controlling different functions but that these connections vary in their ability to influence different sympathetic outputs. Understanding the structural and physiological substrates antecedent to premotor neurons that mediate the differential control of sympathetic outflows, including those to noncardiovascular targets, represents a challenge to our current technical and analytic approaches.
引用
收藏
页码:R683 / R698
页数:16
相关论文
共 168 条
[1]   ROLE OF ACTIVE MUSCLE VASODILATATION IN ALERTING STAGE OF DEFENCE REACTION [J].
ABRAHAMS, VC ;
HILTON, SM ;
ZBROZYNA, AW .
JOURNAL OF PHYSIOLOGY-LONDON, 1964, 171 (02) :189-&
[2]   Identification of cardiovascular pathways in the sympathetic nervous system [J].
Anderson, CR .
CLINICAL AND EXPERIMENTAL PHARMACOLOGY AND PHYSIOLOGY, 1998, 25 (06) :449-452
[3]  
BACON SJ, 1990, EXP BRAIN RES, V79, P589
[4]   RESPIRATORY MODULATION OF SYMPATHETIC ACTIVITY [J].
BAINTON, CR ;
RICHTER, DW ;
SELLER, H ;
BALLANTYNE, D ;
KLEIN, JP .
JOURNAL OF THE AUTONOMIC NERVOUS SYSTEM, 1985, 12 (01) :77-90
[5]   Central circuits mediating patterned autonomic activity during active vs. passive emotional coping [J].
Bandler, R ;
Keay, KA ;
Floyd, N ;
Price, J .
BRAIN RESEARCH BULLETIN, 2000, 53 (01) :95-104
[6]  
Bandler R, 2000, PROG BRAIN RES, V122, P333
[7]   COLUMNAR ORGANIZATION IN THE MIDBRAIN PERIAQUEDUCTAL GRAY - MODULES FOR EMOTIONAL EXPRESSION [J].
BANDLER, R ;
SHIPLEY, MT .
TRENDS IN NEUROSCIENCES, 1994, 17 (09) :379-389
[8]   AXONAL PROJECTION PATTERNS OF VENTROLATERAL MEDULLOSPINAL SYMPATHOEXCITATORY NEURONS [J].
BARMAN, SM ;
GEBBER, GL .
JOURNAL OF NEUROPHYSIOLOGY, 1985, 53 (06) :1551-1566
[9]   BASIS FOR SYNCHRONIZATION OF SYMPATHETIC AND PHRENIC-NERVE DISCHARGES [J].
BARMAN, SM ;
GEBBER, GL .
AMERICAN JOURNAL OF PHYSIOLOGY, 1976, 231 (05) :1601-1607
[10]   DIFFERENTIAL CONTROL OF SYMPATHETIC-NERVE DISCHARGE BY THE BRAIN-STEM [J].
BARMAN, SM ;
GEBBER, GL ;
CALARESU, FR .
AMERICAN JOURNAL OF PHYSIOLOGY, 1984, 247 (03) :R513-R519