Mata Alvaro, Boehm Cynthia, Fleischman Aaron J, Muschler George F, Roy Shuvo
Department of Chemical and Biomedical Engineering, Cleveland State University, Ohio, USA.
Int J Nanomedicine. 2007;2(3):389-406.
Growth characteristics of human connective tissue progenitor (CTP) cells were investigated on smooth and textured substrates, which were produced using MEMS (microelectromechanical systems) fabrication technology. Human bone marrow derived cells were cultured for 9 days under conditions promoting osteoblastic differentiation on polydimethylsiloxane (PDMS) substrates comprising smooth (non-patterned) surfaces (SMOOTH), 4 different cylindrical post micro-textures (POSTS) that were 7-10 microm high and 5, 10, 20, and 40 microm diameter, respectively, and channel micro-textures (CHANNELS) with curved cross-sections that were 11 microm high, 45 microm wide, and separated by 5 microm wide ridges. Standard glass-tissue culture surfaces were used as controls. Micro-textures resulted in the modification of CTP morphology, attachment, migration, and proliferation characteristics. Specifically, cells on POSTS exhibited more contoured morphology with closely packed cytoskeletal actin microfilaments compared to the more random orientation in cells grown on SMOOTH. CTP colonies on 10 gm-diameter POSTS exhibited higher cell number than any other POSTS, and a significant increase in cell number (442%) compared to colonies on SMOOTH (71%). On CHANNELS, colonies tended to be denser (229%) than on POSTS (up to 140% on 10 microm POSTS), and significantly more so compared to those on SMOOTH (104%).
利用微机电系统(MEMS)制造技术制备了光滑和有纹理的基底,研究了人结缔组织祖细胞(CTP)在这些基底上的生长特性。将人骨髓来源的细胞在促进成骨细胞分化的条件下,在聚二甲基硅氧烷(PDMS)基底上培养9天,这些基底包括光滑(无图案)表面(SMOOTH)、4种不同的圆柱形柱状微纹理(POSTS),其高度为7 - 10微米,直径分别为5、10、20和40微米,以及具有弯曲横截面的通道微纹理(CHANNELS),其高度为11微米,宽度为45微米,由5微米宽的脊隔开。标准玻璃组织培养表面用作对照。微纹理导致CTP的形态、附着、迁移和增殖特性发生改变。具体而言,与在SMOOTH上生长的细胞中更随机的取向相比,POSTS上的细胞表现出更具轮廓的形态,细胞骨架肌动蛋白微丝紧密堆积。直径为10微米的POSTS上的CTP集落比任何其他POSTS上的细胞数量都多,与SMOOTH上的集落(71%)相比,细胞数量显著增加(442%)。在CHANNELS上,集落往往比POSTS上更密集(229%)(在10微米POSTS上高达140%),与SMOOTH上的集落(104%)相比更是如此。