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March 28, 2026Chemical Society Reviews3 citations

Amino acid-based biomaterials for modulation of cell behaviors: from mechanisms to biomedical applications

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MLMingyue LiuJCJinjin ChenHLHongjie Li

Key Points

  • To explore the mechanisms by which amino acid-based biomaterials modulate cell behaviors for various biomedical applications.
  • Review of existing literature on amino acid-based biomaterials.
  • Discussion of the mechanisms by which these materials affect cell metabolism and signaling.
  • Examination of the relationship between biomaterial biodegradation and therapeutic timelines.
  • Amino acid-based biomaterials can actively influence cell processes like proliferation, differentiation, and migration.
  • These materials yield peptide fragments that enhance cell signaling and metabolic activities.
  • The integration of biomaterials with therapeutic strategies improves overall treatment efficacy.

Abstract

Amino acid-based biomaterials, encompassing sequence-defined peptides, synthetic poly(amino acid)s, and self-assembling materials, garner increased attention for their advanced potential in biomedical fields. Traditionally, these materials have been employed primarily as carriers or scaffolds for drug delivery or tissue engineering. However, recent research has uncovered their capacity to modulate cell behaviors through various chemical and physical mechanisms, setting them apart from conventional biodegradable biomaterials. The degradation of these materials yields peptide fragments or amino acids that actively participate in cell metabolism and signaling regulation, thereby extending their functionality beyond structural support. This review explores how these biomaterials influence cell processes, such as proliferation, differentiation, migration, gene expression, secretion, intercellular communication, adhesion, phagocytosis, endocytosis, metabolism, senescence, apoptosis, polarization, and immune responses. By regulating these cell functions, either alone or in combination with other therapeutic strategies, amino acid-based biomaterials hold significant promise for applications in cancer therapy, regenerative medicine, and other biomedical fields. Furthermore, this review discusses the synchronization between material biodegradation kinetics and disease treatment timelines, thereby maximizing the bioactivity of degradation products and enhancing therapeutic efficacy. By highlighting the multifunctionality of amino acid-based biomaterials, this review emphasizes their potential in improving therapeutic outcomes and encourages further interdisciplinary research to fully harness their capabilities.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69c771688bbfbc51511e1561https://doi.org/10.1039/d5cs01504a
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