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Updated: Feb 19, 2026

Studies of Chaperone-Cochaperone Interactions using Homogenous Bead-Based Assay
Published on: July 21, 2021
Potential Pharmacological Chaperones for Cystathionine Beta-Synthase-Deficient Homocystinuria
Tomas Majtan1, Angel L Pey2, Paula Gimenez-Mascarell3
1Department of Pediatrics, School of Medicine, University of Colorado, Aurora, CO, USA. tomas.majtan@ucdenver.edu.
Insights
Classical homocystinuria (HCU) is a metabolic disorder caused by mutations in the cystathionine beta-synthase (CBS) gene. Therapeutic strategies focus on correcting CBS misfolding and aggregation to restore enzyme function.
Area of Science:
- Biochemistry
- Genetics
- Metabolic Disorders
Background:
- Classical homocystinuria (HCU) results from loss-of-function mutations in the cystathionine beta-synthase (CBS) gene.
- Mutations often cause CBS misfolding and degradation, leading to toxic homocysteine accumulation.
- Current treatments partially effective; novel therapeutic avenues are needed.
Purpose of the Study:
- To review the structural and functional aspects of CBS.
- To explore therapeutic strategies targeting CBS misfolding in HCU.
- To highlight recent advances in understanding CBS regulation and potential drug development.
Main Methods:
- Review of existing literature on CBS structure, function, and HCU.
- Analysis of studies on small molecule chaperones and proteasome inhibitors in HCU models.
- Discussion of recent crystallographic data and computational modeling approaches.
Main Results:
- CBS function depends on cofactors heme, PLP, and SAM, with complex allosteric regulation.
- Chemical chaperones and proteasome inhibitors show promise in rescuing mutant CBS activity in vitro and in vivo.
- Structural insights facilitate understanding of misfolding mechanisms.
Conclusions:
- Targeting CBS misfolding offers a promising alternative therapeutic strategy for HCU.
- Development of CBS-specific compounds through screening and modeling is a key future direction.
- Improved folding, stability, and activity of mutant CBS could significantly benefit HCU patients.
Abstract:
Classical homocystinuria (HCU) is the most common loss-of-function inborn error of sulfur amino acid metabolism. HCU is caused by a deficiency in enzymatic degradation of homocysteine, a toxic intermediate of methionine transformation to cysteine, chiefly due to missense mutations in the cystathionine beta-synthase (CBS) gene. As with many other inherited disorders, the pathogenic mutations do not target key catalytic residues, but rather introduce structural perturbations leading to an enhanced tendency of the mutant CBS to misfold and either to form nonfunctional aggregates or to undergo proteasome-dependent degradation. Correction of CBS misfolding would represent an alternative therapeutic approach for HCU. In this review, we summarize the complex nature of CBS, its multi-domain architecture, the interplay between the three cofactors required for CBS function [heme, pyridoxal-5'-phosphate (PLP), and S-adenosylmethionine (SAM)], as well as the intricate allosteric regulatory mechanism only recently understood, thanks to advances in CBS crystallography. While roughly half of the patients respond to treatment with a PLP precursor pyridoxine, many studies suggested usefulness of small chemicals, such as chemical and pharmacological chaperones or proteasome inhibitors, rescuing mutant CBS activity in cellular and animal models of HCU. Non-specific chemical chaperones and proteasome inhibitors assist in mutant CBS folding process and/or prevent its rapid degradation, thus resulting in increased steady-state levels of the enzyme and CBS activity. Recent interest in the field and available structural information will hopefully yield CBS-specific compounds, by using high-throughput screening and computational modeling of novel ligands, improving folding, stability, and activity of CBS mutants.
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