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基于MOOC时代的“细胞生物学”翻转课堂探索 被引量:6
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作者 杨浩 张树冰 《中国细胞生物学学报》 CAS CSCD 2020年第5期868-874,共7页
信息时代,传统课堂模式已不能满足大学生对知识的需求。MOOC因其大规模、开放、在线共享等特性,极大程度上将"讲师–学生–课堂"三大主体与互联网融合,构建出一种全新的教学理念+模式。细胞生物学作为生命科学基础学科,涉及... 信息时代,传统课堂模式已不能满足大学生对知识的需求。MOOC因其大规模、开放、在线共享等特性,极大程度上将"讲师–学生–课堂"三大主体与互联网融合,构建出一种全新的教学理念+模式。细胞生物学作为生命科学基础学科,涉及生物学、临床医学多学科领域,同时与其他学科交叉融合,因此,细胞生物学教学模式的创新显得至关重要。该文对于细胞生物学翻转课堂探索基于"细胞解码"慕课的建设措施,同时,为了进一步发挥翻转课堂的优势,我们针对中南大学湘雅医学院、基础医学院、生命科学学院等专业学生开放了"细胞解码"SPOC课堂,将课堂教学与在线教学结合,更好地从教学模式、教学安排、教学评价和教学完善等方面介绍相关教学模式的改革。该研究发现,翻转课堂有助于激发学生自主探索精神、加强学生在"互联网+"大背景下紧跟时代脚步的能力,进而全方位提升学生的综合素质和高等教育教学改革的质量,达到改革创新的目的。 展开更多
关键词 细胞生物学 慕课 翻转课堂 细胞解码
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Decoding early myelopoiesis from dynamics of core endogenous network 被引量:1
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作者 Hang Su Gaowei Wang +4 位作者 Ruoshi Yuan Junqiang Wang Ying Tang Ping Ao Xiaomei Zhu 《Science China(Life Sciences)》 SCIE CAS CSCD 2017年第6期627-646,共20页
A decade ago mainstream molecular biologists regarded it impossible or biologically ill-motivated to understand the dynamics of complex biological phenomena, such as cancer genesis and progression, from a network pers... A decade ago mainstream molecular biologists regarded it impossible or biologically ill-motivated to understand the dynamics of complex biological phenomena, such as cancer genesis and progression, from a network perspective. Indeed, there are numerical difficulties even for those who were determined to explore along this direction. Undeterred, seven years ago a group of Chinese scientists started a program aiming to obtain quantitative connections between tumors and network dynamics. Many interesting results have been obtained. In this paper we wish to test such idea from a different angle: the connection between a normal biological process and the network dynamics. We have taken early myelopoiesis as our biological model. A standard roadmap for the cell-fate diversification during hematopoiesis has already been well established experimentally, yet little was known for its underpinning dynamical mechanisms. Compounding this difficulty there were additional experimental challenges, such as the seemingly conflicting hematopoietic roadmaps and the cell-fate inter-conversion events. With early myeloid cell-fate determination in mind, we constructed a core molecular endogenous network from well-documented gene regulation and signal transduction knowledge. Turning the network into a set of dynamical equations, we found computationally several structurally robust states. Those states nicely correspond to known cell phenotypes. We also found the states connecting those stable states.They reveal the developmental routes—how one stable state would most likely turn into another stable state. Such interconnected network among stable states enabled a natural organization of cell-fates into a multi-stable state landscape. Accordingly, both the myeloid cell phenotypes and the standard roadmap were explained mechanistically in a straightforward manner. Furthermore,recent challenging observations were also explained naturally. Moreover, the landscape visually enables a prediction of a pool of additional cell states and developmental routes, including the non-sequential and cross-branch transitions, which are testable by future experiments. In summary, the endogenous network dynamics provide an integrated quantitative framework to understand the heterogeneity and lineage commitment in myeloid progenitors. 展开更多
关键词 developmental scheme early myeloid cell-fate determination endogenous network stable state transition state landscape
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