Cheng Quhan, Zhang Linli, Zhang Jingai, Zhou Xin, Wu Boyu, Wang Dezheng, Wei Tingting, Shafiq Muhammad, Li Shengbin, Zhi Dengke, Guan Yong, Wang Kai, Kong Deling
Key Laboratory of Bioactive Materials, Ministry of Education, College of Life Sciences, Nankai University, Tianjin, 300071, China.
Department of Medical Imaging, Shanxi Medical University, Taiyuan, 030001, China.
Adv Healthc Mater. 2023 Oct;12(26):e2300544. doi: 10.1002/adhm.202300544. Epub 2023 Sep 10.
There is a great clinical need for regenerating urinary tissue. Native urethras and ureters have bidirectional aligned smooth muscle cells (SMCs) layers, which plays a pivotal role in micturition and transporting urine and inhibiting reflux. Thus far, urinary scaffolds have not been designed to induce the native-mimicking aligned arrangement of SMCs. In this study, a tubular decellularized extracellular matrix (dECM) with an intact internal layer and bidirectional aligned microchannels in the tubular wall, which is realized by the subcutaneous implantation of a template, followed by the removal of the template, and decellularization, is engineered. The dense and intact internal layer effectively increases the leakage pressure of the tubular dECM scaffolds. Rat-derived dECM scaffolds with three different sizes of microchannels are fabricated by tailoring the fiber diameter of the templates. The rat-derived dECM scaffolds exhibiting microchannels of ≈65 µm show suitable mechanical properties, good ability to induce the bidirectional alignment and growth of human bladder SMCs, and elevated higher functional protein expression in vitro. These data indicate that rat-derived tubular dECM scaffolds manifesting double-layer aligned microchannels may be promising candidates to induce the native-mimicking regeneration of SMCs in urethra and ureter reconstruction.
再生泌尿组织存在巨大的临床需求。天然尿道和输尿管具有双向排列的平滑肌细胞(SMC)层,这在排尿、尿液输送和抑制反流中起关键作用。到目前为止,泌尿支架尚未设计成能诱导SMC呈现模仿天然的排列方式。在本研究中,通过皮下植入模板,随后去除模板并进行脱细胞处理,构建了一种具有完整内层且管壁中有双向排列微通道的管状脱细胞细胞外基质(dECM)。致密且完整的内层有效提高了管状dECM支架的渗漏压力。通过调整模板的纤维直径,制备了具有三种不同微通道尺寸的大鼠源dECM支架。表现出约65 µm微通道的大鼠源dECM支架具有合适的力学性能、良好的诱导人膀胱SMC双向排列和生长的能力,以及在体外更高的功能性蛋白表达水平。这些数据表明,呈现双层排列微通道的大鼠源管状dECM支架可能是尿道和输尿管重建中诱导SMC模仿天然再生的有前景的候选材料。