Javascript must be enabled to continue!
Computational Insights Into the Mechanism of EGCG's Binding and Inhibition of the TDP‐43 Aggregation
View through CrossRef
ABSTRACTMisfolding and aggregation of TAR DNA‐binding protein, TDP‐43, is linked to devastating proteinopathies such as ALS. Therefore, targeting TDP‐43's aggregation is significant for therapeutics. Recently, green tea polyphenol, EGCG, was observed to promote non‐toxic TDP‐43 oligomer formation disallowing TDP‐43 aggregation. Here, we investigated if the anti‐aggregation effect of EGCG is mediated via EGCG's binding to TDP‐43. In silico molecular docking and molecular dynamics (MD) simulation suggest a strong binding of EGCG with TDP‐43's aggregation‐prone C‐terminal domain (CTD). Three replicas, each having 800 ns MD simulation of the EGCG‐TDP‐43‐CTD complex, yielded a high negative binding free energy (ΔG) inferring a stable complex formation. Simulation snapshots show that EGCG forms close and long‐lasting contacts with TDP‐43's Phe‐313 and Ala‐341 residues, which were previously identified for monomer recruitment in CTD's aggregation. Notably, stable physical interactions between TDP‐43 and EGCG were also detected in vitro using TTC staining and isothermal titration calorimetry which revealed a high‐affinity binding site of EGCG on TDP‐43 (Kd, 7.8 μM; ΔG, −6.9 kcal/mol). Additionally, TDP‐43 co‐incubated with EGCG was non‐cytotoxic when added to HEK293 cells. In summary, EGCG's binding to TDP‐43 and blocking of residues important for aggregation can be a possible mechanism of its anti‐aggregation effects on TDP‐43.
Title: Computational Insights Into the Mechanism of EGCG's Binding and Inhibition of the TDP‐43 Aggregation
Description:
ABSTRACTMisfolding and aggregation of TAR DNA‐binding protein, TDP‐43, is linked to devastating proteinopathies such as ALS.
Therefore, targeting TDP‐43's aggregation is significant for therapeutics.
Recently, green tea polyphenol, EGCG, was observed to promote non‐toxic TDP‐43 oligomer formation disallowing TDP‐43 aggregation.
Here, we investigated if the anti‐aggregation effect of EGCG is mediated via EGCG's binding to TDP‐43.
In silico molecular docking and molecular dynamics (MD) simulation suggest a strong binding of EGCG with TDP‐43's aggregation‐prone C‐terminal domain (CTD).
Three replicas, each having 800 ns MD simulation of the EGCG‐TDP‐43‐CTD complex, yielded a high negative binding free energy (ΔG) inferring a stable complex formation.
Simulation snapshots show that EGCG forms close and long‐lasting contacts with TDP‐43's Phe‐313 and Ala‐341 residues, which were previously identified for monomer recruitment in CTD's aggregation.
Notably, stable physical interactions between TDP‐43 and EGCG were also detected in vitro using TTC staining and isothermal titration calorimetry which revealed a high‐affinity binding site of EGCG on TDP‐43 (Kd, 7.
8 μM; ΔG, −6.
9 kcal/mol).
Additionally, TDP‐43 co‐incubated with EGCG was non‐cytotoxic when added to HEK293 cells.
In summary, EGCG's binding to TDP‐43 and blocking of residues important for aggregation can be a possible mechanism of its anti‐aggregation effects on TDP‐43.
Related Results
In silico
and
in vitro
studies suggest epigallocatechin gallate (EGCG), a polyphenol in green tea, can bind and modulate the aggregation and cytotoxicity of the full-length TDP-43 protein implicated in
In silico
and
in vitro
studies suggest epigallocatechin gallate (EGCG), a polyphenol in green tea, can bind and modulate the aggregation and cytotoxicity of the full-length TDP-43 protein implicated in
ABSTRACT
Misfolding and aggregation of TDP-43 protein are implicated in several proteinopathies like ALS and FTLD. Extracellular TDP-43 is also p...
Torsades de Pointes Following Ondansetron Administration: A Case Report with literature review
Torsades de Pointes Following Ondansetron Administration: A Case Report with literature review
Abstract
Introduction
Ondansetron blocks human ether-à-go-go-related gene (hERG) potassium channels, causing QT prolongation and risk of torsades de pointes (TdP). Despite its wide...
Einfluss von (‐)‐Epigallocatechin‐3‐gallat auf Enzyme der Klassen der Histondeacetylasen und Topoisomerasen in Zellmodellen
Einfluss von (‐)‐Epigallocatechin‐3‐gallat auf Enzyme der Klassen der Histondeacetylasen und Topoisomerasen in Zellmodellen
Zusammenfassung(‐)‐Epigallocatechin‐3‐gaNat (EGCG) gehört zu der Gruppe der Catechine, welche 30‐40 % der festen Bestandteile von grünem Tee ausmachen. Eine Vielzahl von gesundheit...
Skin TDP-43 pathology as a candidate biomarker for predicting amyotrophic lateral sclerosis decades prior to motor symptom onset
Skin TDP-43 pathology as a candidate biomarker for predicting amyotrophic lateral sclerosis decades prior to motor symptom onset
Abstract
The recognition that disease-associated proteinopathies can manifest in peripheral organs outside the central nervous system preceding the onset of neurolo...
RNA-binding deficient TDP-43 drives cognitive decline in a mouse model of TDP-43 proteinopathy
RNA-binding deficient TDP-43 drives cognitive decline in a mouse model of TDP-43 proteinopathy
Abstract
TDP-43 proteinopathies including frontotemporal lobar dementia (FTLD) and amyotrophic lateral sclerosis (ALS) are neurodegenerative disorders characterized...
RNA-binding deficient TDP-43 drives cognitive decline in a mouse model of TDP-43 proteinopathy
RNA-binding deficient TDP-43 drives cognitive decline in a mouse model of TDP-43 proteinopathy
Abstract
TDP-43 proteinopathies including frontotemporal lobar dementia (FTLD) and amyotrophic lateral sclerosis (ALS) are neurodegenerative diso...
RNA-binding deficient TDP-43 drives cognitive decline in a mouse model of TDP-43 proteinopathy
RNA-binding deficient TDP-43 drives cognitive decline in a mouse model of TDP-43 proteinopathy
Abstract
TDP-43 proteinopathies including frontotemporal lobar dementia (FTLD) and amyotrophic lateral sclerosis (ALS) are neurodegenerative diso...
RNA-deficient TDP-43 causes loss of free nuclear TDP-43 by sequestration
RNA-deficient TDP-43 causes loss of free nuclear TDP-43 by sequestration
Abstract
Dysfunction and aggregation of the RNA-binding protein, TDP-43, is the unifying hallmark of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia...

