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1 bitors of the sympathetic nervous system and parasympathetic nervous system.
2 s, which may enable wiring of the developing parasympathetic nervous system.
3 ms, the RetDN/+ mice only had defects in the parasympathetic nervous system.
4 of the airways is derived primarily from the parasympathetic nervous system.
5 to the heart rate decrease triggered by the parasympathetic nervous system.
6 portant factor in the control of ChBF by the parasympathetic nervous system.
7 rs intestinal stem cell function through the parasympathetic nervous system.
8 Paragangliomas arise from the sympathetic or parasympathetic nervous system.
9 euroendocrine tumours of the sympathetic and parasympathetic nervous systems.
10 ects the balance between the sympathetic and parasympathetic nervous systems.
11 present study examined associations between parasympathetic nervous system activity and cellular ant
12 nt quantification of resting sympathetic and parasympathetic nervous system activity by heart rate va
14 ight a potential biological pathway by which parasympathetic nervous system activity may relate to he
15 ate inflammation, but it remains unclear how parasympathetic nervous system activity relates to antiv
16 geminal nerve modulates both sympathetic and parasympathetic nervous system activity to activate an e
17 ound that higher RSA (an indicator of higher parasympathetic nervous system activity)-both at rest an
20 elative contributions of the sympathetic and parasympathetic nervous systems, along with potential no
21 nervation may serve to coregulate the sacral parasympathetic nervous system and brain noradrenergic s
22 ergistic coactivation of the sympathetic and parasympathetic nervous system as measured by heart rate
26 tems: inflammation, glucose, sympathetic and parasympathetic nervous systems, HPA-axis, cardiovascula
28 ontrols hepatic lipid metabolism through the parasympathetic nervous system, independent of changes i
30 choline (ACh), a key neurotransmitter of the parasympathetic nervous system, modulates immune functio
31 llowing the discovery of the sympathetic and parasympathetic nervous system, numerous adrenoceptor dr
33 gested that changes in sympathetic (SNS) and parasympathetic nervous system (PNS) activity may influe
35 In infants at 6 months of age, we measured parasympathetic nervous system (PNS) activity using cont
36 let hormone considered a surrogate marker of parasympathetic nervous system (PNS) drive to the pancre
40 s entirely attributable to the withdrawal of parasympathetic nervous system (PSNS) activity and that
42 sympathetic nervous system (SNS) versus the parasympathetic nervous system (PSNS) in mediating fatal
43 ention effects were evident for cortisol and parasympathetic nervous system reactivity only among chi
46 s heart-rate variability (HRV) - a marker of parasympathetic nervous system response - was assessed d
47 L) and myocyte contractile responsiveness to parasympathetic nervous system signaling, although this
48 the organization at successive relays in the parasympathetic nervous system strongly resemble each ot
49 ic and sensory fibers of the sympathetic and parasympathetic nervous systems that regulate liver func
51 nonalcoholic fatty liver disease through the parasympathetic nervous system, whereas it increases fat
52 ediates 'fight or flight' responses, and the parasympathetic nervous system, which governs 'rest and
53 of acetylcholine, a neurotransmitter of the parasympathetic nervous system, which reduced hematopoie
54 obiota in rodents leads to activation of the parasympathetic nervous system, which, in turn, promotes
55 ated by the activity of the cardioinhibitory parasympathetic nervous system, while abnormally low lev