» Articles » PMID: 22863521

Towards a Roadmap in Brain Protection and Recovery

Overview
Journal J Cell Mol Med
Date 2012 Aug 7
PMID 22863521
Citations 23
Authors
Affiliations
Soon will be listed here.
Abstract

This article briefly reviews some of the mechanisms involved in the pathogenesis of neurological diseases, i.e. damage mechanisms (DM), and their interactions and overlap with protection and reparatory processes (i.e. endogenous defence activities). A relationship between DM and endogenous defence activity (EDA) regarding therapy principles will also be described. Currently, it is difficult to find the correct therapeutic approach for brain protection and recovery, especially because we do not fully understand all of the endogenous neurobiological processes, the complete nature of the pathophysiological mechanisms and the links between these two categories. Moreover, we continue to use a simplistic and reductionist approach in this respect. Endogenous neurobiological processes, such as neurotrophicity, neuroprotection, neuroplasticity and neurogenesis, are central to protection and recovery and represent the background of EDA. The biological reality of the nervous system is far more complex. In fact, there is an endogenous holistic process of neuroprotection and neurorecovery that should be approached therapeutically in an integrated way. The current tendency to exclusively frame drug activity in terms of single mechanisms and single focus effect might distract from other paradigms with greater explanatory power and hinder the development of more effective treatment strategies. A change of concept is required in pharmacological brain protection and recovery. Prospective considerations include an integrated pharmacological approach, focusing on drugs with multimodal activity and pleiotropic neuroprotective effect which are biological drugs, rather than single mechanism drugs, which usually are chemical drugs.

Citing Articles

Neuropsychological Performance after Extended N-Pep-12 Dietary Supplementation in Supratentorial Ischemic Stroke.

Muresanu D, Verisezan-Rosu O, Jemna N, Benedek I, Rednic J, Vlad I Brain Sci. 2024; 14(10).

PMID: 39452000 PMC: 11506754. DOI: 10.3390/brainsci14100986.


The Effect of Extremely Low-Frequency Magnetic Field on Stroke Patients: A Systematic Review.

Marchewka R, Trzmiel T, Hojan K Brain Sci. 2024; 14(5).

PMID: 38790409 PMC: 11119128. DOI: 10.3390/brainsci14050430.


A retrospective study of Cerebrolysin in patients with moderate to severe traumatic brain injury: Cognitive and functional outcomes.

Soto C, Salinas P, Munoz D, Olivares S, Gonzalez J, Saez V J Med Life. 2023; 16(7):1017-1021.

PMID: 37900065 PMC: 10600656. DOI: 10.25122/jml-2023-0125.


Editorial: Natural products for neuroprotection and neuroregeneration.

Wong K, Lim L, Mohd Hisam N, Kamarudin M, Lakshmanan H Front Pharmacol. 2023; 14:1209297.

PMID: 37266142 PMC: 10230221. DOI: 10.3389/fphar.2023.1209297.


Role and Impact of Cerebrolysin for Ischemic Stroke Care.

Muresanu D, Popa L, Chira D, Dabala V, Hapca E, Vlad I J Clin Med. 2022; 11(5).

PMID: 35268364 PMC: 8911124. DOI: 10.3390/jcm11051273.


References
1.
Pachter J, de Vries H, Fabry Z . The blood-brain barrier and its role in immune privilege in the central nervous system. J Neuropathol Exp Neurol. 2003; 62(6):593-604. DOI: 10.1093/jnen/62.6.593. View

2.
Maas A, Roozenbeek B, Manley G . Clinical trials in traumatic brain injury: past experience and current developments. Neurotherapeutics. 2010; 7(1):115-26. PMC: 5084118. DOI: 10.1016/j.nurt.2009.10.022. View

3.
Arundine M, Tymianski M . Molecular mechanisms of glutamate-dependent neurodegeneration in ischemia and traumatic brain injury. Cell Mol Life Sci. 2004; 61(6):657-68. PMC: 11138528. DOI: 10.1007/s00018-003-3319-x. View

4.
Windhagen A, Newcombe J, Dangond F, Strand C, Woodroofe M, Cuzner M . Expression of costimulatory molecules B7-1 (CD80), B7-2 (CD86), and interleukin 12 cytokine in multiple sclerosis lesions. J Exp Med. 1995; 182(6):1985-96. PMC: 2192240. DOI: 10.1084/jem.182.6.1985. View

5.
Wu H, Yuen E, Lu Y, Matsushita M, Matsui H, Yan Z . Regulation of N-methyl-D-aspartate receptors by calpain in cortical neurons. J Biol Chem. 2005; 280(22):21588-93. DOI: 10.1074/jbc.M501603200. View