Search PubMed⌕ Search

PubMed · 1623893

Exercise and the cutaneous circulation.

Abstract

Our understanding of the control of the cutaneous circulation has increased over the past decade, but is still far from complete. There is a cutaneous vasoconstriction at the beginning of exercise that usually effectively competes with concurrent thermoregulatory drives for vasodilation. This cutaneous vasoconstrictor response, however, requires dynamic activity by a significant muscle mass as small muscle groups or isometric exercise are ineffective or nearly so. Also, exercise causes the threshold internal temperature relative to rest such that SKBF is lower during exercise than in resting conditions for a given thermal stimulus. A further influence by exercise on the cutaneous circulation is to limit the degree of cutaneous vasodilation when heat stress and exercise are combined. These three roles for exercise compete with the thermogenic role that promotes vasodilation. The previously described effects act through the adrenergic vasoconstrictor system and the separate active vasodilator system. The increase in SKBF with heat stress represents the combination of withdrawal of vasoconstrictor activity and elevation of active vasodilator activity. The vasoconstrictor effect of the initiation of exercise is accomplished strictly through enhanced vasoconstrictor activity; vasodilator withdrawal does not participate [72]. However, both the exercise-induced elevation in thermoregulatory threshold for raising SKBF and the limitation to cutaneous vasodilation during exercise are strictly functions of the active vasodilator system [69, 73, 78]. In the first case, active vasodilation is delayed until a higher (relative to rest) level of internal temperature is reached. In the second case, the plateau in SKBF during exercise in the heat is due to a similar plateau in active vasodilator activity. Exercise has also served as a tool for the study of other influences on the cutaneous circulation. The influences of alterations in body fluid volumes, osmolarity, acclimatization, hypertension, time of day, menstrual phase, and others on the control of SKBF have been assessed by using exercise as a calorigenic source. The question as to whether the nonthermoregulatory influences of exercise interact with these other influences to give a modification of the pattern of control different from what might be observed at rest is largely unanswered. Future directions for research are numerous, but several fundamental questions are outstanding. The mechanism of active cutaneous vasodilation has been elusive since its discovery and remains an exceptionally important question. Second, the sensory elements associated with exercise giving rise to the alterations in the pattern of control are unclear. This problem is made challenging by the fact that the efferent control by exercise differs between its initiation and events later in exercise.(ABSTRACT TRUNCATED AT 400 WORDS)

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

J M Johnson. 1992. Exercise and the cutaneous circulation.. https://pubmed.ncbi.nlm.nih.gov/1623893/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Adaptation to climate across the Arabidopsis thaliana genome.

Understanding the genetic bases and modes of adaptation to current climatic conditions is essential to accurately predict responses to future environmental change. We conducted a genome-wide scan to identify climate-adaptive genetic loci and pathways in the plant Arabidopsis thaliana. Amino acid-changing variants were significantly enriched among the loci strongly correlated with climate, suggesting that our scan effectively detects adaptive alleles. Moreover, from our results, we successfully predicted relative fitness among a set of geographically diverse A. thaliana accessions when grown together in a common environment. Our results provide a set of candidates for dissecting the molecular bases of climate adaptations, as well as insights about the prevalence of selective sweeps, which has implications for predicting the rate of adaptation.

Acclimatization↗

Contrasting behavior of higher plant photosystem I and II antenna systems during acclimation.

In this work we analyzed the photosynthetic apparatus in Arabidopsis thaliana plants acclimated to different light intensity and temperature conditions. Plants showed the ability to acclimate into different environments and avoid photoinhibition. When grown in high light, plants had a faster activation rate for energy dissipation (qE). This ability was correlated to higher accumulation levels of a specific photosystem II subunit, PsbS. The photosystem II antenna size was also regulated according to light exposure; smaller antenna size was observed in high light-acclimated plants with respect to low light plants. Different antenna polypeptides did not behave similarly, and Lhcb1, Lchb2, and Lhcb6 (CP24) are shown to undergo major levels of regulation, whereas Lhcb4 and Lhcb5 (CP29 and CP26) maintained their stoichiometry with respect to the reaction center in all growth conditions. The effect of acclimation on photosystem I antenna was different; in fact, the stoichiometry of any Lhca antenna proteins with respect to photosystem I core complex was not affected by growth conditions. Despite this stability in antenna stoichiometry, photosystem I light harvesting function was shown to be regulated through different mechanisms like the control of photosystem I to photosystem II ratio and the association or dissociation of Lhcb polypeptides to photosystem I.

Acclimatization↗

Elevated atmospheric CO2 and strain of rhizobium alter freezing tolerance and cold-induced molecular changes in alfalfa (Medicago sativa).

BACKGROUND AND AIMS: The objective of the study was to assess the impact of elevated CO2 in interaction with rhizobial strains on freezing tolerance and cold-induced molecular changes in alfalfa. METHODS: Alfalfa inoculated with two different strains of rhizobium (A2 and NRG34) was grown and cold acclimated (2 weeks at 2 degrees C) under either 400 (ambient) or 800 micromol mol(-1) (elevated) CO2. KEY RESULTS: Plants acclimated under 400 micromol mol(-1) CO2 were more freezing tolerant than those maintained under 800 micromol mol(-1). Cryoprotective sugars typically linked with the acquisition of freezing tolerance such as sucrose, stachyose and raffinose increased in roots in response to low temperature but did not differ between CO2 treatments. Similarly high CO2 did not alter the expression of many cold-regulated (COR) genes although it significantly increased the level of transcripts encoding a COR gene homologous to glyceraldehyde-3-phosphate-dehydrogenase (GAPDH). A significant effect of rhizobial strain was observed on both freezing tolerance and gene expression. Plants of alfalfa inoculated with strain A2 were more freezing tolerant than those inoculated with strain NRG34. Transcripts of COR genes homologous to a pathogenesis-related protein (PR-10) and to a nuclear-targeted protein were markedly enhanced in roots of alfalfa inoculated with strain A2 as compared with strain NRG34. Transcripts encoding the vegetative storage proteins (VSPs) beta-amylase and chitinase were more abundant in roots of non-acclimated plants inoculated with strain NRG34 than with strain A2. CONCLUSIONS: Taken together, the results suggest that elevated CO2 stimulates plant growth and reduces freezing tolerance. The acquisition of cold tolerance is also influenced by the rhizobial strain, as indicated by lower levels of expression of COR genes and sustained accumulation of VSP-encoding transcripts in alfalfa inoculated with strain NRG34 as compared with strain A2.

Acclimatization↗