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太空中的细胞。

Cells in space.

作者信息

Wong J

出版信息

Nat Med. 1997 Mar;3(3):259. doi: 10.1038/nm0397-259b.

Abstract

How does one treat in a seriously injured astronaut in outer space or even another planet? To answer such a question, the US National Aeronautical Space Administration (NASA) has embarked on a program of growing tissues--and possibly whole organs--in space. NASA has developed a unique rotating bioreactor that allow cells to be grown in a microgravity environment that eliminates almost all shear forces placed upon a cell culture system while entering space. Back on earth, this novel bioreactor has led to exciting discoveries and applications by scientists trying to get cells to differentiate and form their natural three-dimensional tissue matrices--the holy grail of tissue engineers. NASA's bioreactor has allowed various labs to culture cells and even viruses previously impossible to grow using traditional methods. These successes are attributed to the bioreactor's ability to provide an unique environment that closely resembles tissue differentiation during embryogenesis, and thus allowing cellular expression of surface epitopes similar to that of intact tissues. It also appears that cells grown in a microgravity, low-shear environment allows for greater chemical signaling, probably as a result of more surface contact between cells. Realizing the bioreactor's commercial potential, Santa Monica, California-based VivoRx licensed exclusive rights from NASA for both therapeutic and diagnostic commercial applications. VivoRx has, in the past, successfully transplanted encapsulated islet cells from cadavers and porcine pancreas into insulin-dependent diabetics, perhaps a major breakthrough in the treatment of diabetes. However, pancreas from cadavers are in very short supply. The bioreactor may be the answer; VivoRx hopes the bioreactor will allow them to propagate enough human islet cells to use their cell-based approach to treat a large diabetic population. The company has already successfully grown islet cells generated from the bioreactors, and is beginning FDA-approved Phase I/II clinical trials.

摘要

如何治疗在太空中甚至是在另一颗行星上严重受伤的宇航员呢?为了回答这个问题,美国国家航空航天局(NASA)已着手开展一项在太空中培育组织——甚至可能是完整器官——的计划。NASA研发了一种独特的旋转生物反应器,它能让细胞在微重力环境中生长,这种环境几乎消除了细胞培养系统在进入太空时所受到的所有剪切力。在地球上,这种新型生物反应器已促使科学家们取得了令人兴奋的发现和应用成果,他们试图让细胞分化并形成其自然的三维组织基质,这是组织工程师们梦寐以求的目标。NASA的生物反应器使各个实验室能够培养细胞,甚至培养出了以前用传统方法无法培养的病毒。这些成功归因于该生物反应器能够提供一种独特的环境,这种环境与胚胎发育过程中的组织分化极为相似,从而使细胞表面表位的表达类似于完整组织。似乎在微重力、低剪切力环境中生长的细胞能实现更强的化学信号传递,这可能是细胞之间更多表面接触的结果。意识到该生物反应器的商业潜力,总部位于加利福尼亚州圣莫尼卡的VivoRx公司从NASA获得了治疗和诊断商业应用的独家授权。过去,VivoRx已成功地将来自尸体和猪胰腺的封装胰岛细胞移植到依赖胰岛素的糖尿病患者体内,这或许是糖尿病治疗领域的一项重大突破。然而,尸体胰腺的供应非常短缺。生物反应器可能是解决之道;VivoRx希望该生物反应器能让他们培育出足够多的人类胰岛细胞,以便采用基于细胞的方法治疗大量糖尿病患者。该公司已经成功培育出了由生物反应器生成的胰岛细胞,并即将开始FDA批准的I/II期临床试验。

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