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Influence of crowding and surfaces on protein amyloidogenesis: A thermo-kinetic perspective. | LitMetric

Influence of crowding and surfaces on protein amyloidogenesis: A thermo-kinetic perspective.

Biochim Biophys Acta Proteins Proteom

Department of Biological Sciences, Indian Institute of Science Education and Research Kolkata, Mohanpur 741246, India; Centre for Advanced Functional Materials (CAFM), Indian Institute of Science Education and Research Kolkata, Mohanpur 741246, India. Electronic address:

Published: October 2019

AI Article Synopsis

  • The text discusses how protein self-assembly and aggregation lead to amyloid fibril formation, a key factor in neurodegenerative diseases, emphasizing the role of crowded cellular environments over traditional lab settings.
  • It highlights that these overcrowded environments can either speed up or slow down protein aggregation due to various influencing factors, and that the processes change when proteins interact with both natural and artificial surfaces.
  • The review also addresses the dual role of nanoparticles in amyloid aggregation, suggesting that they could either help or hinder this process, and emphasizes the need for further research to develop advanced, biocompatible anti-amyloid therapies.

Article Abstract

The last few decades have irreversibly implicated protein self-assembly and aggregation leading to amyloid fibril formation in proteopathies that include several neurodegenerative diseases. Emerging studies recognize the importance of eliciting the pathways leading to protein aggregation in the context of the crowded intracellular environment rather than in conventional in vitro conditions. It is found that crowded environments can have acceleratory as well as inhibitory effects on protein aggregation, depending on the interplay of underlying factors on the crucial rate limiting steps. The aggregation mechanism and transient species formed along the pathway are further altered when they interface with natural and artificial surfaces in the cellular milieu. An increasing number of studies probe the autocatalytic nature of amyloid surfaces as well as membrane bilayer effects on amyloidogenesis. Moreover, exposure to modern nanosurfaces via nanomedicines and other sources potentially invokes beneficial or deleterious biological response that needs rigorous investigation. Mounting evidences indicate that nanoparticles can either promote or impede amyloid aggregation, spurring efforts to tune their interactions for developing effective anti-amyloid strategies. Mechanistic insights into nanoparticle mediated aggregation pathways are therefore crucial for engineering anti-amyloid nanoparticle strategies that are biocompatible and sustainable. This review is a compilation of studies that contribute to the current understanding of the altering effects of molecular crowding as well as natural and artificial surfaces on protein amyloidogenesis.

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Source
http://dx.doi.org/10.1016/j.bbapap.2019.03.009DOI Listing

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