Casanova César R, Casanova Marta R, Reis Rui L, Oliveira Joaquim M
3B's Research Group, European Institute of Excellence in Tissue Engineering and Regenerative Medicine Headquarters, Parque de Ciência e Tecnologia, I3Bs - Research Institute on Biomaterials, Biodegradable and Biomimetics - University of Minho, Zona Industrial da Gandra - Avepark, Barco, Guimaraes, 4805-017 Portugal.
ICVS/3B's - PT Government Associate Laboratory, Guimaraes, Braga, Portugal.
In Vitro Model. 2024 Jun 4;3(2-3):139-150. doi: 10.1007/s44164-024-00072-5. eCollection 2024 Jun.
Soft microfluidic systems play a pivotal role in personalized medicine, particularly in in vitro diagnostics tools and disease modeling. These systems offer unprecedented precision and versatility, enabling the creation of intricate three-dimensional (3D) tissue models that can closely emulate both physiological and pathophysiological conditions. By leveraging innovative biomaterials and bioinks, soft microfluidic systems can circumvent the current limitations involving the use of polydimethylsiloxane (PDMS), thus facilitating the development of customizable systems capable of sustaining the functions of encapsulated cells and mimicking complex biological microenvironments. The integration of lab-on-a-chip technologies with soft nanodevices further enhances disease models, paving the way for tailored therapeutic strategies. The current research concepts underscore the transformative potential of soft microfluidic systems, exemplified by recent breakthroughs in soft lithography and 3D (bio)printing. Novel applications, such as multi-layered tissues-on-chips and skin-on-a-chip devices, demonstrate significant advancements in disease modeling and personalized medicine. However, further exploration is warranted to address challenges in replicating intricate tissue structures while ensuring scalability and reproducibility. This exploration promises to drive innovation in biomedical research and healthcare, thus offering new insights and solutions to complex medical challenges and unmet needs.
柔性微流控系统在个性化医疗中发挥着关键作用,尤其是在体外诊断工具和疾病建模方面。这些系统具有前所未有的精度和多功能性,能够创建复杂的三维(3D)组织模型,可紧密模拟生理和病理生理状况。通过利用创新的生物材料和生物墨水,柔性微流控系统可以规避目前使用聚二甲基硅氧烷(PDMS)所存在的限制,从而推动可定制系统的开发,这些系统能够维持封装细胞的功能并模拟复杂的生物微环境。芯片实验室技术与柔性纳米器件的集成进一步完善了疾病模型,为量身定制的治疗策略铺平了道路。当前的研究理念强调了柔性微流控系统的变革潜力,软光刻和3D(生物)打印方面的最新突破就是例证。新型应用,如多层芯片上组织和芯片上皮肤装置,展示了疾病建模和个性化医疗方面的重大进展。然而,仍有必要进一步探索,以应对在复制复杂组织结构同时确保可扩展性和可重复性方面的挑战。这一探索有望推动生物医学研究和医疗保健领域的创新,从而为复杂的医学挑战和未满足的需求提供新的见解和解决方案。