Biosensing surfaces and therapeutic biomaterials for the central nervous system in COVID-19

被引:0
作者
Amene Saghazadeh
Nima Rezaei
机构
[1] Tehran University of Medical Sciences,Research Center for Immunodeficiencies, Children’s Medical Center Hospital
[2] Universal Scientific Education and Research Network (USERN),Systematic Review and Meta
[3] Tehran University of Medical Sciences,analysis Expert Group (SRMEG)
[4] Universal Scientific Education and Research Network (USERN),Department of Immunology, School of Medicine
来源
Emergent Materials | 2021年 / 4卷
关键词
Artificial nose; Biomaterial; Brain; Central nervous system; CNS; COVID-19; Cytokine storm; Drug delivery; Infection; Inflammation; Intracerebral hemorrhage; Neuropathies; Nose; Olfaction; Stroke;
D O I
暂无
中图分类号
学科分类号
摘要
COVID-19 can affect the central nervous system (CNS) indirectly by inflammatory mechanisms and even directly enter the CNS. Thereby, COVID-19 can evoke a range of neurosensory conditions belonging to infectious, inflammatory, demyelinating, and degenerative classes. A broad range of non-specific options, including anti-viral agents and anti-inflammatory protocols, is available with varying therapeutic. Due to the high mortality and morbidity in COVID-19–related brain damage, some changes to these general protocols, however, are necessary for ensuring the delivery of therapeutic(s) to the specific components of the CNS to meet their specific requirements. The biomaterials approach permits crossing the blood–brain barrier (BBB) and drug delivery in a more accurate and sustained manner. Beyond the BBB, drugs can protect neural cells, stimulate endogenous stem cells, and induce plasticity more effectively. Biomaterials for cell delivery exist, providing an efficient tool to improve cell retention, survival, differentiation, and integration. This paper will review the potentials of the biomaterials approach for the damaged CNS in COVID-19. It mainly includes biomaterials for promoting synaptic plasticity and modulation of inflammation in the post-stroke brain, extracellular vesicles, exosomes, and conductive biomaterials to facilitate neural regeneration, and artificial nerve conduits for treatment of neuropathies. Also, biosensing surfaces applicable to the first sensory interface between the host and the virus that encourage the generation of accelerated anti-viral immunity theoretically offer hope in solving COVID-19.
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页码:293 / 312
页数:19
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共 744 条
[1]  
Rabiee N(2020)COVID-19 and picotechnology: potential opportunities Med. Hypotheses 144 109917-196
[2]  
Rabiee M(2020)Nano-enabled biosensing systems for intelligent healthcare: towards COVID-19 management Materials Today Chemistry 17 100306-223
[3]  
Bagherzadeh M(2016)Aqueous synthesized quantum dots interfere with the NF-κB pathway and confer anti-tumor, anti-viral and anti-inflammatory effects Biomaterials 108 187-13
[4]  
Rezaei N(2009)Nanoparticle-based targeted drug delivery Exp. Mol. Pathol. 86 215-8580
[5]  
Mujawar MA(2002)Nanoparticle technology for drug delivery across the blood–brain barrier Drug Dev. Ind. Pharm. 28 1-812
[6]  
Gohel H(2020)Nanoparticle-based strategies to combat COVID-19 ACS Applied Nano Materials 3 8557-2417
[7]  
Bhardwaj SK(2020)Advanced drug delivery systems can assist in targeting coronavirus disease (COVID-19): a hypothesis Med. Hypotheses 144 110254-79
[8]  
Srinivasan S(2020)Cardiovascular system is at higher risk of affecting by COVID-19. Acta bio-medica Atenei Parmensis 91 e2020018-1874
[9]  
Hickman N(2020)Acute cardiac injury in COVID-19: a systematic review and meta-analysis Archives of Iranian Medicine 23 801-418
[10]  
Kaushik A(2020)Occurrence of acute coronary syndrome, pulmonary thromboembolism, and cerebrovascular event in COVID-19 Clin Case Rep 8 2414-722