Metabolic Memory in Cardiovascular Disease: Encoding, Propagation, and Therapeutic Targeting

Cardiovascular risk in metabolic disease persists long after the initiating metabolic abnormalities are corrected, a phenomenon termed metabolic memory. The DCCT/EDIC cohort is illustrative: early glycemic control produced cardiovascular protection that peaked within a decade and left a lasting legacy. The same strategy applied after prolonged hyperglycemia, however, has not reproduced this benefit. This conceptual Review proposes a framework in which such persistent risk arises from four distinct processes: encoded epigenetic memory, irreversible structural damage, chronic input from dysfunctional organs, and delayed tissue remodeling, each with a different therapeutic logic. Persistence of these encoded marks is established most directly in immune-lineage cells; its extension to cardiomyocytes remains a working hypothesis. Only encoded memory is accessible to chromatin-directed reversal, and only before metabolic stress exhausts the erasure machinery that keeps marks revisable, a time-dependence proposed to explain why early intervention succeeds where late intervention fails. Clinical efficacy therefore may depend on engaging the substrate maintaining pathology rather than normalizing a surrogate biomarker, a substrate-alignment principle consistent with the divergent outcomes of recent cardiometabolic trials. We apply the framework to atherosclerosis, heart failure, and diabetic cardiomyopathy, grade its claims by a three-tier evidence classification, and specify testable predictions that could refute it.

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Publication Details

Journal
Advanced Science
Published
2026-08-27
DOI
https://doi.org/10.1002/advs.77260
Primary Topic
Immune responses and vaccinations
Type
article
Field-Weighted Citation Impact
0.00

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article

Metabolic Memory in Cardiovascular Disease: Encoding, Propagation, and Therapeutic Targeting

Ruoyi Qu, Shilong You, Jianfei Pei, Naijin Zhang et al.
Advanced Science
Immune responses and vaccinations
article

Metabolic Memory in Cardiovascular Disease: Encoding, Propagation, and Therapeutic Targeting

Ruoyi Qu, Shilong You, Jianfei Pei, Naijin Zhang, 张兆波, Cheng Cheng, Rui Zhao, Wenke Wang, Minghui Tang, Shenshen Cui, Siyao Qu, Tian Liu, Yingxian Sun
article en

Abstract

Cardiovascular risk in metabolic disease persists long after the initiating metabolic abnormalities are corrected, a phenomenon termed metabolic memory. The DCCT/EDIC cohort is illustrative: early glycemic control produced cardiovascular protection that peaked within a decade and left a lasting legacy. The same strategy applied after prolonged hyperglycemia, however, has not reproduced this benefit. This conceptual Review proposes a framework in which such persistent risk arises from four distinct processes: encoded epigenetic memory, irreversible structural damage, chronic input from dysfunctional organs, and delayed tissue remodeling, each with a different therapeutic logic. Persistence of these encoded marks is established most directly in immune-lineage cells; its extension to cardiomyocytes remains a working hypothesis. Only encoded memory is accessible to chromatin-directed reversal, and only before metabolic stress exhausts the erasure machinery that keeps marks revisable, a time-dependence proposed to explain why early intervention succeeds where late intervention fails. Clinical efficacy therefore may depend on engaging the substrate maintaining pathology rather than normalizing a surrogate biomarker, a substrate-alignment principle consistent with the divergent outcomes of recent cardiometabolic trials. We apply the framework to atherosclerosis, heart failure, and diabetic cardiomyopathy, grade its claims by a three-tier evidence classification, and specify testable predictions that could refute it.

Advanced Science
First Hospital of China Medical University (CN), China Medical University (CN)
National Natural Science Foundation of China, National Science and Technology Major Project, Liaoning Revitalization Talents Program, Young Scientists Fund, National Key Research and Development Program of China
Good health and well-being
Openalex Percentile: Top 16%
Immune responses and vaccinations
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