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  • × 2023
 全选  【符合条件的数据共:101条】

Molecular Cancer,2023年

Jinpeng Du, Wenwei Liao, Xing Chen, Qingbo Feng, Mingheng Liao, Kunlin Xie, Jiwei Huang, Tian Lan, Haotian Liao, Guimin Hou, Lin Xu, Yong Zeng, Xuping Feng, Kefei Yuan, Xiangzheng Chen

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Molecular Cancer,2023年

Junjeong Choi, Sehyung Pak, Han‑Woong Lee, Hannah Lee, Ji Eun Shin, Hwa‑Ryeon Kim, Hyun Woo Park, Hyunbin D. Huh, Ye Eun Kim, Jae Hyung Park, So Yeon Park, Jae‑Seok Roe, Ju Young Lee, Young Hoon Roh, Kun‑Liang Guan, Yujin Sub, Soyeon Lee, Heon Yung Gee, Jongwook Oh, Joon Jeong, Yu Suk Choi, Sebastian E. Amos, Danielle Vahala, Han Sang Kim

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Molecular Cancer,2023年

Na Ding, Yunjin Xie, Tingting Shao, Jiaqi Yin, Haozhe Zou, Jialiang Zhou, Yongsheng Li, Juan Xu, Jiwei Zhang, Mingxu Song

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Molecular Cancer,2023年

Shi-Wei Yue, Wei Zhang, Bi-Xiang Zhang, Hui-Fang Liang, Hong-Fei Su, Chu Luo, Hai-Ling Liu

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Glycolytic reprogramming is one of the most important features of cancer and plays an integral role in the progression of cancer. In cancer cells, changes in glucose metabolism meet the needs of self-proliferation, angiogenesis and lymphangiogenesis, metastasis, and also affect the immune escape, prognosis evaluation and therapeutic effect of cancer. The n6-methyladenosine (m6A) modification of RNA is widespread in eukaryotic cells. Dynamic and reversible m6A modifications are widely involved in the regulation of cancer stem cell renewal and differentiation, tumor therapy resistance, tumor microenvironment, tumor immune escape, and tumor metabolism. Lately, more and more evidences show that m6A modification can affect the glycolysis process of tumors in a variety of ways to regulate the biological behavior of tumors. In this review, we discussed the role of glycolysis in tumor genesis and development, and elaborated in detail the profound impact of m6A modification on different tumor by regulating glycolysis. We believe that m6A modified glycolysis has great significance and potential for tumor treatment.

    Molecular Cancer,2023年

    Omar Motiño, Flavia Lambertucci, Isabelle Martins, Sijing Li, Guido Kroemer, Li Sun

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    Protein regulator of cytokinesis 1 (PRC1) is involved in cytokinesis. Growing evidence suggests the association of PRC1 with multiple cancers. Here, we unveil that, in 28 cancer types, PRC1 is higher expressed in tumor tissues than in non-malignant tissues. Overexpression of PRC1 indicates unfavorable prognostic value, especially in ACC, LGG, KIRP, LICH, LUAD, MESO, PAAD, SARC and UCEC, while methylation of the PRC1 gene at sites associated with its inactivation has a favorable prognostic value in ACC, KIRP, LUAD, MESO, KIRP and LGG. Differentially expressed genes (DEGs) associated with high (> median) PRC1 expression contribute to key signaling pathways related with cell cycle, DNA damage and repair, EMT, cell migration, invasion and cell proliferation in most cancer types. More specifically, the DEGs involved in RAS/RAF/MAPK, PI3K/AKT, WNT, NOTCH, TGF-β, integrin, EMT process, focal adhesion, RHO GTPase-related pathway or microtubule cytoskeleton regulation are upregulated when PRC1 expression is above median, as confirmed for most cancers. Most importantly, high expression of PRC1 appears to be associated with an overabundance of poor-prognosis TH2 cells. Furthermore, positive correlations of PRC1 and some immune checkpoint genes (CD274, CTLA4, HAVCR2, LAG3, PDCD1, PDCD1LG2, TIGIT, and CD86) were observed in several cancers, especially BLCA, BRCA, KIRC, LUAD, LIHC, PRAD and THCA. These findings plead in favor of further studies validating the diagnostic and prognostic impact of PRC1 as well as the elaboration of pharmacological strategies for targeting PRC1.

      Molecular Cancer,2023年

      Linjiang Tong, Jian Ding, Yiming Sun, Rong Qu, Yanyan Shen, Tao Zhang, Yi Chen, Yi Su, Meiyu Geng, Yan Li, Hua Xie, Peiran Song, Fang Feng, Yanan Wang, Yingqiang Liu, Mengzhen Lai, Gang Bai, Shingpan Chan, Ke Ding, Hongyu Chen, Tingting Song

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