Current and future strategies of theragenerative platforms supplemented using biofabrication

生物加工 脚手架 组织工程 计算机科学 癌症治疗 治疗方式 肿瘤微环境 细胞外基质 再生(生物学) 模式 纳米技术 癌症治疗 组织修复 再生医学 医学 生物信息学 风险分析(工程) 旁分泌信号 个性化医疗 癌症 踏脚石 药物输送 治疗方式 生物相容性 药物开发
作者
Junya Zhai,SooJung Chae,Hyeongjin Lee,GeunHyung Kim
出处
期刊:Applied physics reviews [American Institute of Physics]
卷期号:13 (1)
标识
DOI:10.1063/5.0291532
摘要

Theragenerative platforms combine targeted tumor treatment and tissue regeneration into a single therapeutic approach, addressing both aspects simultaneously. This strategy is especially valuable in complex cancers such as bone, liver, and breast, where conventional therapies often result in irreversible tissue damage and incomplete recovery. Among various technological approaches, biofabrication has emerged as a promising tool for constructing multifunctional systems that modulate the tumor microenvironment (TME) while promoting tissue restoration. In this review, we provide a comprehensive overview of current theragenerative strategies, focusing on scaffold-based platforms that integrate energy-responsive therapeutic modalities (e.g., photothermal, magnetothermal) with controlled drug release. We highlight key biofabrication technologies, including three-dimensional (3D) bioprinting, electrospinning, and organ-specific scaffold designs, which support synergistic cancer eradication and tissue repair. Representative applications in bone, breast, liver, and skin cancers are discussed, with emphasis on TME modulation, activation of endogenous repair pathways, and personalized treatment enabled by multifunctional constructs. Despite recent progress, significant challenges remain. Antagonistic interactions between therapeutic and regenerative components, such as photothermal-induced cell damage or impaired extracellular matrix remodeling, can limit efficacy. Current approaches often overlook anatomical and immunological heterogeneity across cancer types. Furthermore, the spatial and temporal control of therapeutic effects within complex tissue environments remains difficult to achieve. Additionally, organ-specific barriers, such as the blood–brain barrier or enzymatic degradation in the gastrointestinal tract, complicate scaffold performance and drug delivery. To advance clinical translation, future theragenerative platforms must integrate precision biofabrication with adaptive feedback systems that allow real-time control while ensuring long-term biocompatibility and functional tissue integration.

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