| [1] |
Wan, X.Y.; Luo, M.; Li, X.D.; He, P. Hepatoprotective and anti-hepatocarcinogenic effects of glycyrrhizin and matrine. Chem. Biol. Interact. 2009, 181, 15–19.
|
| [2] |
Wang, X.H.; Li, D.M. Mechanism of matrine inhibiting proliferation of hepatocellular carcinoma cells by regulating autophagy. Chin. Pharm. J. 2021, 56, 985–990.
|
| [3] |
Mizushima, N. Autophagy: process and function. Genes Dev. 2007, 21, 2861–2873.
|
| [4] |
Xie, S.B.; He, X.X.; Yao, S.K. Matrine-induced autophagy regulated by p53 through AMP-activated protein kinase in human hepatoma cells. Int. J. Oncol. 2015, 47, 517–526.
|
| [5] |
Li, X.; Zhou, J.F.; Ling, Y.X.; Tan, Y.C.; Zhang, J.L.; Wang, X.F.; Li, F.F.; Jiang, S.F.; Zhang, S.H.; Yu, K.; Han, Y.X. Matrine induces autophagic cell death by triggering ROS/AMPK/mTOR axis and apoptosis in multiple myeloma. Biomed. Pharmacother. 2024, 175, 116738.
|
| [6] |
Levine, B.; Abrams, J. p53: the Janus of autophagy? Nat. Cell Biol. 2008, 10, 637–639.
|
| [7] |
Song, B.; Yang, P.; Zhang, S.Y. Cell fate regulation governed by p53: Friends or reversible foes in cancer therapy. Cancer Commun. 2024, 44, 297–360.
|
| [8] |
Proikas-Cezanne, T.; Ruckerbauer, S.; Stierhof, Y.D.; Berg, C.; Nordheim, A. Human WIPI-1 puncta-formation: a novel assay to assess mammalian autophagy. FEBS Lett. 2007, 581, 3396–3404.
|
| [9] |
Tasdemir, E.; Maiuri, M.C.; Morselli, E.; Criollo, A.; D’Amelio, M.; Djavaheri-Mergny, M.; Cecconi, F.; Tavernarakis, N.; Kroemer, G. A dual role of p53 in the control of autophagy. Autophagy. 2008, 4, 810–814.
|
| [10] |
Zhang, X.F.; Cheng, Q.; Yin, H.J.; Yang, G. Regulation of autophagy and EMT by the interplay between p53 and RAS during cancer progression (Review). Int. J. Oncol. 2017, 51, 18–24.
|
| [11] |
Zhang, Y.J.; Zhang, L.; Gao, J.H.; Wen, L.P. Pro-death or pro-survival: contrasting paradigms on nanomaterial-induced autophagy and exploitations for cancer therapy. Acc. Chem. Res. 2019, 52, 3164–3176.
|
| [12] |
Dikic, I.; Elazar, Z. Mechanism and medical implications of mammalian autophagy. Nat. Rev. Mol. Cell Biol. 2018, 19, 349–364.
|
| [13] |
Ma, J.; Xue, H.; He, L.H.; Wang, L.Y.; Wang, X.J.; Li, X.; Zhang, L. The role and mechanism of autophagy in pancreatic cancer: an update review. Cancer Manag. Res. 2021, 13, 8231–8240.
|
| [14] |
Li, X.H.; He, S.K.; Ma, B.Y. Autophagy and autophagy-related proteins in cancer. Mol. Cancer. 2020, 19, 12.
|
| [15] |
Liu, L.; Yan, L.; Liao, N.; Wu, W.Q.; Shi, J.L. A review of ULK1-mediated autophagy in drug resistance of cancer. Cancers. 2020, 12, 352.
|
| [16] |
Kim, J.; Kundu, M.; Viollet, B.; Guan, K.L. AMPK and mTOR regulate autophagy through direct phosphorylation of Ulk1. Nat. Cell Biol. 2011, 13, 132–141.
|
| [17] |
Dooley, H.C.; Wilson, M.I.; Tooze, S.A. WIPI2B links PtdIns3P to LC3 lipidation through binding ATG16L1. Autophagy. 2015, 11, 190–191.
|
| [18] |
Zhang, K.; Peng, T.; Tao, X.Y.; Tian, M.; Li, Y.X.; Wang, Z.; Ma, S.F.; Hu, S.F.; Pan, X.; Xue, J.; Luo, J.W.; Wu, Q.L.; Fu, Y.; Li, S. Structural insights into caspase ADPR deacylization catalyzed by a bacterial effector and host calmodulin. Mol. Cell. 2022, 82, 4712–4726.e7.
|
| [19] |
Proikas-Cezanne, T.; Pfisterer, S.G. Assessing mammalian autophagy by WIPI-1/Atg18 puncta formation. Methods Enzymol. 2009, 247–260.
|
| [20] |
Zhu, Y.; Lam, A.K.Y.; Shum, D.K.Y.; Cui, D.; Zhang, J.; Yan, D.D.; Li, B.; Xu, W.W.; Lee, N.P.Y.; Chan, K.T.; Law, S.; Tsao, S.W.; Cheung, A.L.M. Significance of serglycin and its binding partners in autocrine promotion of metastasis in esophageal cancer. Theranostics. 2021, 11, 2722–2741.
|
| [21] |
Wang, Y.; Liu, X.; Zhang, H. Small molecule glycoprotein SRGN interacts with TGFβ to promote chemotherapy resistance in non-small cell lung cancer. Chin. Med. J. 2020, 133, 1043–1051.
|
| [22] |
Wang, J.; Zhang, L.L.; Cui, X.Y.; Xu, X.; Guo, R.; Li, K.R.; Zhang, L.; Xu, B.; Jiang, C.Z.; Yu, Y. Bcl11a maintains hematopoietic stem cell function but accelerates inflammation-driven exhaustion during aging. Sci. Immunol. 2025, 10, eadr2041.
|
| [23] |
Khaled, W.T.; Choon Lee, S.; Stingl, J.; Chen, X.F.; Raza Ali, H.; Rueda, O.M.; Hadi, F.; Wang, J.X.; Yu, Y.; Chin, S.F.; Stratton, M.; Futreal, A.; Jenkins, N.A.; Aparicio, S.; Copeland, N.G.; Watson, C.J.; Caldas, C.; Liu, P.T. BCL11A is a triple-negative breast cancer gene with critical functions in stem and progenitor cells. Nat. Commun. 2015, 6, 5987.
|