Division of Engineering in Medicine, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Cambridge, MA, 02139, USA.
LeBow Institute for Myeloma Therapeutics and Jerome Lipper Myeloma Center, Department of Medical Oncology, Dana-Farber Cancer Institute, Harvard Medical School, Boston, MA, 02115, USA.
Adv Healthc Mater. 2022 Apr;11(7):e2100884. doi: 10.1002/adhm.202100884. Epub 2021 Sep 23.
Multiple myeloma (MM) is a malignancy of plasma cells accounting for ≈12% of hematological malignancies. In this study, the fabrication of a high-content in vitro MM model using a coaxial extrusion bioprinting method is reported, allowing formation of a human bone marrow-like microenvironment featuring an outer mineral-containing sheath and the inner soft hydrogel-based core. MM cells are mono-cultured or co-cultured with HS5 stromal cells that can release interleukin-6 (IL-6), where the cells show superior behaviors and responses to bortezomib in 3D models than in the planar cultures. Tocilizumab, a recombinant humanized anti-IL-6 receptor (IL-6R), is investigated for its efficacy to enhance the chemosensitivity of bortezomib on MM cells cultured in the 3D model by inhibiting IL-6R. More excitingly, in a proof-of-concept demonstration, it is revealed that patient-derived MM cells can be maintained in 3D-bioprinted microenvironment with decent viability for up to 7 days evaluated, whereas they completely die off in planar culture as soon as 5 days. In conclusion, a 3D-bioprinted MM model is fabricated to emulate some characteristics of the human bone marrow to promote growth and proliferation of the encapsulated MM cells, providing new insights for MM modeling, drug development, and personalized therapy in the future.
多发性骨髓瘤(MM)是一种浆细胞恶性肿瘤,约占血液系统恶性肿瘤的 12%。本研究报道了一种使用同轴挤出生物打印方法构建高内涵体外 MM 模型的方法,该模型可形成具有外矿化鞘和内软水凝胶核的人骨髓样微环境。MM 细胞可进行单核或与可释放白细胞介素-6(IL-6)的 HS5 基质细胞共培养,细胞在 3D 模型中的行为和对硼替佐米的反应优于平面培养。研究了重组人源抗白细胞介素-6 受体(IL-6R)托珠单抗对增强硼替佐米对 3D 模型中培养的 MM 细胞的化疗敏感性的疗效,通过抑制 IL-6R。更令人兴奋的是,在一个概念验证演示中,揭示了患者来源的 MM 细胞可以在 3D 生物打印的微环境中保持相当的活力长达 7 天,而在平面培养中,它们在 5 天内就完全死亡。总之,构建了一种 3D 生物打印的 MM 模型,以模拟人骨髓的一些特征,促进封装的 MM 细胞的生长和增殖,为 MM 建模、药物开发和未来的个性化治疗提供了新的见解。