J 2022

Molecular nanoinformatics approach assessing the biocompatibility of biogenic silver nanoparticles with channelized intrinsic steatosis and apoptosis

PANDA, Pritam Kumar; Puja KUMARI; Paritosh PATEL; Shailesh Kumar SAMAL; Suman MISHRA et al.

Basic information

Original name

Molecular nanoinformatics approach assessing the biocompatibility of biogenic silver nanoparticles with channelized intrinsic steatosis and apoptosis

Authors

PANDA, Pritam Kumar; Puja KUMARI; Paritosh PATEL; Shailesh Kumar SAMAL; Suman MISHRA; Murtaza M. TAMBUWALA; Ateet DUTT; Klára HILSCHEROVÁ; Yogendra Kumar MISHRA; Rajender S. VARMA; Mrutyunjay SUAR; Rajeev AHUJA and Suresh K. VERMA

Edition

Green Chemistry, CAMBRIDGE, ROYAL SOC CHEMISTRY, 2022, 1463-9262

Other information

Language

English

Type of outcome

Article in a journal

Country of publisher

United Kingdom of Great Britain and Northern Ireland

Confidentiality degree

is not subject to a state or trade secret

References:

URL

Marked to be transferred to RIV

Yes

RIV identification code

RIV/00216224:14310/22:00125411

Organization

Přírodovědecká fakulta – Repository – Repository

DOI

https://doi.org/10.1039/d1gc04103g

UT WoS

000741040300001

EID Scopus

2-s2.0-85124221319

Keywords in English

CHEMISTRY-BASED MODEL; MECHANISTIC INSIGHT; BACTERIAL RELEASE; GREEN SYNTHESIS; DANIO-RERIO; ZEBRAFISH; CYTOTOXICITY; PROTEIN; CELLS; ROS

Links

EF17_043/0009632, research and development project. RECETOX RI, large research infrastructures.
Changed: 11/6/2025 00:49, RNDr. Daniel Jakubík

Abstract

In the original language

The developmental rapidity of nanotechnology poses higher risks of exposure to humans and the environment through manufactured nanomaterials. The multitude of biological interfaces, such as DNA, proteins, membranes, and cell organelles, which come in contact with nanoparticles, is influenced by colloidal and dynamic forces. Consequently, the ensued nano-bio interface depends on dynamic forces, encompasses many cellular absorption mechanisms along with various biocatalytic activities, and biocompatibility that needs to be investigated in detail. Addressing the issue, the study offers a novel green synthesis strategy for antibacterial AgNPs with higher biocompatibility and elucidates the mechanistic in vivo biocompatibility of silver nanoparticles (AgNPs) at the cellular and molecular levels. The analysis ascertained the biosynthesis of G-AgNPs with the size of 25 +/- 10 nm and zeta potential of -29.2 +/- 3.0 mV exhibiting LC50 of 47.2 mu g mL(-1) in embryonic zebrafish. It revealed the mechanism as a consequence of abnormal physiological metabolism in oxidative stress and neutral lipid metabolism due to dose-dependent interaction with proteins such as he1a, sod1, PEX protein family, and tp53 involving amino acids such as arginine, glutamine and leucine leading to improper apoptosis. The research gave a detailed insight into the role of diverse AgNPs-protein interactions with a unique combinatorial approach from first-principles density functional theory and in silico analyses, thus paving a new pathway to comprehending their intrinsic properties and usage.
Displayed: 3/5/2026 12:27