Lactate metabolism and protein lactylation in inflammatory and tumor microenvironments

Lactate and lactate-mediated protein lactylation are no longer viewed merely as accompanying phenomena of enhanced glycolysis, hypoxic responses, or tissue acidification. They are now recognized as an important regulatory axis that links local metabolic stress to chromatin regulation and altered protein function. With the rapid development of research on histone and non-histone lactylation, lactate-related signals have been implicated in inflammatory injury and repair, fibrotic remodeling, tumor immune escape, and therapy resistance. However, current studies often conflate elevated lactate levels, global increases in lactylation, site-specific lactylation events, and disease-dependent functional consequences, which can lead to overinterpretation of both the biological impact and therapeutic value of lactylation. This review first summarizes lactate production, transport, and local homeostatic regulation, then discusses the biochemical basis and detection strategies of protein lactylation. It further examines how histone lactylation reshapes transcriptional programs and how non-histone lactylation influences immune regulation by altering protein fate and signaling execution. Considering the distinct features of inflammatory and tumor microenvironments, this review compares the functional outputs of the lactate-lactylation axis during stage-specific inflammatory responses and persistent tumor-associated stress, with particular emphasis on its translational significance in immune checkpoint regulation, impaired antigen presentation, and therapeutic resistance. We propose a stratified framework for interpreting lactate-related events, distinguishing metabolic stress readouts, functional regulatory events, and disease-dependent nodes. This framework may support patient stratification, lesion-selective delivery, dynamic monitoring, and the design of precise combination therapies.

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Publication Details

Journal
Molecular Biomedicine
Published
2026-08-27
DOI
https://doi.org/10.1186/s43556-026-00558-6
Primary Topic
Cancer, Hypoxia, and Metabolism
Type
article
Field-Weighted Citation Impact
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Lactate metabolism and protein lactylation in inflammatory and tumor microenvironments

Siyu Hao, Wanping Li, Shuang Gou, Yulin Bai et al.
Molecular Biomedicine
Cancer, Hypoxia, and Metabolism
article

Lactate metabolism and protein lactylation in inflammatory and tumor microenvironments

Siyu Hao, Wanping Li, Shuang Gou, Yulin Bai, Yueshui Zhao, Huaqing Lei, Jing Shen, Meijuan Chen, Xiaobing Li, Hanyu Li, Xiangyu Lei, Jiarui Lan, Yuhong Sun, Dan Cai, Xiaoyan Pu, Fukuan Du, Mingxing Li, Yan Li, Yan Zhang, Yu Chen, Jiaqi Tang, Li Gu, Lin Liu, Xu Wu, Zhangang Xiao
article en

Abstract

Lactate and lactate-mediated protein lactylation are no longer viewed merely as accompanying phenomena of enhanced glycolysis, hypoxic responses, or tissue acidification. They are now recognized as an important regulatory axis that links local metabolic stress to chromatin regulation and altered protein function. With the rapid development of research on histone and non-histone lactylation, lactate-related signals have been implicated in inflammatory injury and repair, fibrotic remodeling, tumor immune escape, and therapy resistance. However, current studies often conflate elevated lactate levels, global increases in lactylation, site-specific lactylation events, and disease-dependent functional consequences, which can lead to overinterpretation of both the biological impact and therapeutic value of lactylation. This review first summarizes lactate production, transport, and local homeostatic regulation, then discusses the biochemical basis and detection strategies of protein lactylation. It further examines how histone lactylation reshapes transcriptional programs and how non-histone lactylation influences immune regulation by altering protein fate and signaling execution. Considering the distinct features of inflammatory and tumor microenvironments, this review compares the functional outputs of the lactate-lactylation axis during stage-specific inflammatory responses and persistent tumor-associated stress, with particular emphasis on its translational significance in immune checkpoint regulation, impaired antigen presentation, and therapeutic resistance. We propose a stratified framework for interpreting lactate-related events, distinguishing metabolic stress readouts, functional regulatory events, and disease-dependent nodes. This framework may support patient stratification, lesion-selective delivery, dynamic monitoring, and the design of precise combination therapies.

Molecular BiomedicineVol. 7(1)
Southwest Medical University (CN), First Affiliated Hospital of Sichuan Medical University (CN), Guang’anmen Hospital (CN), Shanghai Cell Therapy Research Institute (CN), Chongqing Medical University (CN)
Good health and well-being
Openalex Percentile: Top 14%
Cancer, Hypoxia, and Metabolism
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