2023
DOI: 10.1021/acs.jpcb.2c07684
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Biomolecular Condensates Regulate Enzymatic Activity under a Crowded Milieu: Synchronization of Liquid–Liquid Phase Separation and Enzymatic Transformation

Abstract: Cellular crowding plays a key role in regulating the enzymatic reactivity in physiological conditions, which is challenging to realize in the dilute phase. Enzymes drive a wide range of complex metabolic reactions with high efficiency and selectivity under extremely heterogeneous and crowded cellular environments. However, the molecular interpretation behind the enhanced enzymatic reactivity under a crowded milieu is poorly understood. Herein, using the horseradish peroxidase (HRP) and glucose oxidase (GOx) ca… Show more

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Cited by 23 publications
(44 citation statements)
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“…17,18,44−46 Chaotropic salt sodium thiocyanate (NaSCN) and aliphatic alcohol 1,6-hexanediol are known to disrupt the hydrophobic protein−protein interactions. 18,44,46 We visualized the feasibility of LLPS of 1 μM Tf in the presence of 10% PEG using CLSM by varying the concentrations of NaSCN from 0.1 to 2.0 M (Figure 3a). Droplet formation is feasible up to 1.0 M of NaSCN; however, complete inhibition of LLPS of Tf has been observed at and beyond 2 M of NaSCN.…”
Section: Nature Of Intermolecular Protein−protein Interactionsmentioning
confidence: 99%
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“…17,18,44−46 Chaotropic salt sodium thiocyanate (NaSCN) and aliphatic alcohol 1,6-hexanediol are known to disrupt the hydrophobic protein−protein interactions. 18,44,46 We visualized the feasibility of LLPS of 1 μM Tf in the presence of 10% PEG using CLSM by varying the concentrations of NaSCN from 0.1 to 2.0 M (Figure 3a). Droplet formation is feasible up to 1.0 M of NaSCN; however, complete inhibition of LLPS of Tf has been observed at and beyond 2 M of NaSCN.…”
Section: Nature Of Intermolecular Protein−protein Interactionsmentioning
confidence: 99%
“…More importantly, our group has recently demonstrated macromolecular crowding-induced biomolecular condensate formation of two structurally robust functional enzymes, namely, horseradish peroxidase (HRP) and glucose oxidase (GOx), which remarkably enhances the enzymatic activity and selectivity at physiological conditions. 46 These intriguing findings of homotypic LLPS of functional proteins open up a new avenue for the exploration of the role of these membraneless condensates to control the activity of various functional proteins. Apart from their role in the aggregation pathway, various synthetic and biomolecular condensates are also known as efficient scaffolds for the stabilization and protection of sequestered biomolecules against temperature, pH, protease digestion, and aging.…”
Section: ■ Introductionmentioning
confidence: 99%
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“…Recent studies suggest that some enzymes show different activity inside droplets. For example, Saini et al recently discovered that macromolecular crowding induces LLPS, which leads to an increase in the intrinsic catalytic efficiencies of horseradish peroxidase (HRP) and glucose oxidase (GOx) [ 110 ]. Transcription factors (TFs) and RNAs also induce the formation of transcriptional condensates via LLPS, which contain clusters of multiple enhancers (super-enhancers) [ 111 ].…”
Section: Biomolecular Droplets and Their Functionsmentioning
confidence: 99%
“…To form transcriptional condensates, TFs bind to various cis-regulatory DNA elements (e.g., promoters and enhancers) and stimulate the transcription of active genes in proximity, facilitating the precise control of gene expression [ 113 ]. Other examples of enzymes and transcription factors which undergo LLPS are listed in Table 4 [ 110 , 114 , 115 , 116 , 117 , 118 , 119 , 120 , 121 , 122 , 123 , 124 , 125 , 126 , 127 , 128 , 129 , 130 , 131 , 132 , 133 , 134 , 135 , 136 , 137 , 138 ].…”
Section: Biomolecular Droplets and Their Functionsmentioning
confidence: 99%