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Review
. 2020 Oct 1;21(19):7267.
doi: 10.3390/ijms21197267.

Growth Factors in the Carotid Body-An Update

Affiliations
Review

Growth Factors in the Carotid Body-An Update

Elena Stocco et al. Int J Mol Sci. .

Abstract

The carotid body may undergo plasticity changes during development/ageing and in response to environmental (hypoxia and hyperoxia), metabolic, and inflammatory stimuli. The different cell types of the carotid body express a wide series of growth factors and corresponding receptors, which play a role in the modulation of carotid body function and plasticity. In particular, type I cells express nerve growth factor, brain-derived neurotrophic factor, neurotrophin 3, glial cell line-derived neurotrophic factor, ciliary neurotrophic factor, insulin-like-growth factor-I and -II, basic fibroblast growth factor, epidermal growth factor, transforming growth factor-α and -β, interleukin-1β and -6, tumor necrosis factor-α, vascular endothelial growth factor, and endothelin-1. Many specific growth factor receptors have been identified in type I cells, indicating autocrine/paracrine effects. Type II cells may also produce growth factors and express corresponding receptors. Future research will have to consider growth factors in further experimental models of cardiovascular, metabolic, and inflammatory diseases and in human (normal and pathologic) samples. From a methodological point of view, microarray and/or proteomic approaches would permit contemporary analyses of large groups of growth factors. The eventual identification of physical interactions between receptors of different growth factors and/or neuromodulators could also add insights regarding functional interactions between different trophic mechanisms.

Keywords: BDNF; GDNF; Parkinson’s disease; VEGF; carotid body; development; growth factors; hyperoxia; hypoxia; receptors; receptor–receptor interactions.

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Conflict of interest statement

The authors declare no conflicts of interest.

Figures

Figure 1
Figure 1
Expression and modulation of growth factors in the carotid body.

References

    1. Sacramento J.F., Andrzejewski K., Melo B.F., Ribeiro M.J., Obeso A., Conde S.V. Exploring the Mediators that Promote Carotid Body Dysfunction in Type 2 Diabetes and Obesity Related Syndromes. Int. J. Mol. Sci. 2020;21:5545. doi: 10.3390/ijms21155545. - DOI - PMC - PubMed
    1. Kim L.J., Polotsky V.Y. Carotid Body and Metabolic Syndrome: Mechanisms and Potential Therapeutic Targets. Int. J. Mol. Sci. 2020;21:5117. doi: 10.3390/ijms21145117. - DOI - PMC - PubMed
    1. Porzionato A., Macchi V., De Caro R., Di Giulio C. Inflammatory and immunomodulatory mechanisms in the carotid body. Respir. Physiol. Neurobiol. 2013;187:31–40. doi: 10.1016/j.resp.2013.02.017. - DOI - PubMed
    1. Tse A., Yan L., Lee A.K., Tse F.W. Autocrine and paracrine actions of ATP in rat carotid body. Can. J. Physiol. Pharm. 2012;90:705–711. doi: 10.1139/y2012-054. - DOI - PubMed
    1. Leonard E.M., Nurse C.A. Expanding Role of Dopaminergic Inhibition in Hypercapnic Responses of Cultured Rat Carotid Body Cells: Involvement of Type II Glial Cells. Int. J. Mol. Sci. 2020;21:5434. doi: 10.3390/ijms21155434. - DOI - PMC - PubMed

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