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Artículo

The energetic brain – A review from students to students

Bordone, Melina PaulaIcon ; Salman, Mootaz M.; Titus, Haley E.; Amini, Elham; Andersen, Jens V.; Chakraborti, Barnali; Diuba, Artem V.; Dubouskaya, Tatsiana G.; Ehrke, Eric; Espindola de Freitas, Andiara; Braga de Freitas, Guilherme; Gonçalves, Rafaella A.; Gupta, Deepali; Gupta, Richa; Ha, Sharon R.; Hemming, Isabel A.; Jaggar, Minal; Jakobsen, Emil; Kumari, Punita; Lakkappa, Navya; Marsh, Ashley P. L.; Mitlöhner, Jessica; Ogawa, Yuki; Ramesh Kumar, Paidi; Ribeiro, Felipe C.; Salamian, Ahmad; Saleem, Suraiya; Sharma, Sorabh; Silva, Joana M.; Singh, Shripriya; Sulakhiya, Kunjbihari; Tefera, Tesfaye Wolde; Vafadari, Behnam; Yadav, Anuradha; Yamazaki, Reiji; Seidenbecher, Constanze I.
Fecha de publicación: 10/2019
Editorial: Wiley Blackwell Publishing, Inc
Revista: Journal of Neurochemistry
ISSN: 0022-3042
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Bioquímica y Biología Molecular; Biología Celular, Microbiología

Resumen

The past 20 years have resulted in unprecedented progress in understanding brain energy metabolism and its role in health and disease. In this review, which was initiated at the 14th International Society for Neurochemistry Advanced School, we address the basic concepts of brain energy metabolism and approach the question of why the brain has high energy expenditure. Our review illustrates that the vertebrate brain has a high need for energy because of the high number of neurons and the need to maintain a delicate interplay between energy metabolism, neurotransmission, and plasticity. Disturbances to the energetic balance, to mitochondria quality control or to glia–neuron metabolic interaction may lead to brain circuit malfunction or even severe disorders of the CNS. We cover neuronal energy consumption in neural transmission and basic (‘housekeeping’) cellular processes. Additionally, we describe the most common (glucose) and alternative sources of energy namely glutamate, lactate, ketone bodies, and medium chain fatty acids. We discuss the multifaceted role of non-neuronal cells in the transport of energy substrates from circulation (pericytes and astrocytes) and in the supply (astrocytes and microglia) and usage of different energy fuels. Finally, we address pathological consequences of disrupted energy homeostasis in the CNS.
Palabras clave: ANLS HYPOTHESIS , ENERGY HOMEOSTASIS , METABOLISM , NEUROMETABOLIC COUPLING , NEURONAL ENERGETIC COST , SYNAPSE
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info:eu-repo/semantics/openAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Atribución-NoComercial-SinDerivadas 2.5 Argentina (CC BY-NC-ND 2.5 AR)
Identificadores
URI: http://hdl.handle.net/11336/138678
DOI: http://dx.doi.org/10.1111/jnc.14829
URL: https://onlinelibrary.wiley.com/doi/10.1111/jnc.14829
Colecciones
Articulos(ININFA)
Articulos de INST.DE INVEST.FARMACOLOGICAS (I)
Citación
Bordone, Melina Paula; Salman, Mootaz M.; Titus, Haley E.; Amini, Elham; Andersen, Jens V.; et al.; The energetic brain – A review from students to students; Wiley Blackwell Publishing, Inc; Journal of Neurochemistry; 151; 2; 10-2019; 139-165
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