AI Article Synopsis

  • - The study focuses on human acidic fibroblast growth factor (hFGF1), a protein that plays a crucial role in cell processes like growth and healing, and its tendency to aggregate when exposed to heat.
  • - Researchers analyzed various hFGF1 variants to understand how changes in their structure affect stability, finding that a specific combination of mutations (triple variant Q54P/K126N/R136E) greatly enhances stability and allows for reversible thermal unfolding.
  • - Molecular dynamic simulations revealed that the stability of the triple variant is linked to a network of hydrogen bonds and salt bridges, which could help in designing more effective hFGF1 variants for improved wound healing.

Article Abstract

Human acidic fibroblast growth factor (hFGF1) is an all beta-sheet protein that is involved in the regulation of key cellular processes including cell proliferation and wound healing. hFGF1 is known to aggregate when subjected to thermal unfolding. In this study, we investigate the equilibrium unfolding of hFGF1 using a wide array of biophysical and biochemical techniques. Systematic analyses of the thermal and chemical denaturation data on hFGF1 variants (Q54P, K126N, R136E, K126N/R136E, Q54P/K126N, Q54P/R136E, and Q54P/K126N/R136E) indicate that nullification of charges in the heparin-binding pocket can significantly increase the stability of wtFGF1. Triple variant (Q54P/K126N/R136E) was found to be the most stable of all the hFGF1 variants studied. With the exception of triple variant, thermal unfolding of wtFGF1 and the other variants is irreversible. Thermally unfolded triple variant refolds completely to its biologically native conformation. Microsecond-level molecular dynamic simulations reveal that a network of hydrogen bonds and salt bridges linked to Q54P, K126N, and R136E mutations, are responsible for the high stability and reversibility of thermal unfolding of the triple variant. In our opinion, the findings of the study provide valuable clues for the rational design of a stable hFGF1 variant that exhibits potent wound healing properties.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8329156PMC
http://dx.doi.org/10.1038/s41598-021-95050-2DOI Listing

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