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Wang et al. Cancer Drug Resist. 2026;9:8                                         Page 17 of 18





               5.  Geisslinger F, Müller M, Vollmar AM, Bartel K. Targeting lysosomes in cancer as promising strategy to overcome chemoresistance - a
                  mini review. Front Oncol. 2020;10:1156. DOI PubMed PMC
               6.  Zhitomirsky B, Assaraf YG. Lysosomes as mediators of drug resistance in cancer. Drug Resist Updat. 2016;24:23-33. DOI PubMed
               7.  Chauhan N, Patro BS. Emerging roles of lysosome homeostasis (repair, lysophagy and biogenesis) in cancer progression and therapy.
                  Cancer Lett. 2024;584:216599. DOI PubMed
               8.  Trybus W, Trybus E, Król T. Lysosomes as a target of anticancer therapy. Int J Mol Sci. 2023;24:2176. DOI PubMed PMC
               9.  Cuesta-Casanovas L, Delgado-Martínez J, Cornet-Masana JM, Carbó JM, Clément-Demange L, Risueño RM. Lysosome-mediated
                  chemoresistance in acute myeloid leukemia. Cancer Drug Resist. 2022;5:233-44. DOI PubMed PMC
               10.  Liverani C, De Vita A, Spadazzi C, et al. Lineage-specific mechanisms and drivers of breast cancer chemoresistance revealed by 3D
                  biomimetic culture. Mol Oncol. 2022;16:921-39. DOI PubMed PMC
               11.  Xu Z, He C, Li X, Huang L, Cheng B, Dong S. Glucuronidase-instructed glycopeptide self-assembly for selective killing of cancer cells
                  through lysosomal membrane permeabilization. Angew Chem Int Ed Engl. ;2025:e202420596. DOI PubMed
               12.  Zhitomirsky B, Assaraf YG. Lysosomal sequestration of hydrophobic weak base chemotherapeutics triggers lysosomal biogenesis and
                  lysosome-dependent cancer multidrug resistance. Oncotarget. 2015;6:1143-56. DOI PubMed PMC
               13.  Hu M, Carraway KL 3rd. Repurposing cationic amphiphilic drugs and derivatives to engage lysosomal cell death in cancer treatment.
                  Front Oncol. 2020;10:605361. DOI PubMed PMC
               14.  Keum C, Hong J, Kim D, Lee SY, Kim H. Lysosome-instructed self-assembly of amino-acid-functionalized perylene diimide for
                  multidrug-resistant cancer cells. ACS Appl Mater Interfaces. 2021;13:14866-74. DOI PubMed
               15.  Wang J, Zhou L, Wang H. Harnessing endocytic pH gradients for cascaded formation of intracellular condensates to inhibit autophagy: a
                  pathway to cancer therapy. Nano Today. 2024;57:102317. DOI
               16.  Chen Y, Yang Z, Wang S, et al. Boosting ROS-mediated lysosomal membrane permeabilization for cancer ferroptosis therapy. Adv
                  Healthc Mater. 2023;12:e2202150. DOI PubMed
               17.  Kim JW, Min DW, Kim D, et al. GPX4 overexpressed non-small cell lung cancer cells are sensitive to RSL3-induced ferroptosis. Sci
                  Rep. 2023;13:8872. DOI PubMed PMC
               18.  Muhammad P, Hanif S, Li J, et al. Carbon dots supported single Fe atom nanozyme for drug-resistant glioblastoma therapy by activating
                  autophagy-lysosome pathway. Nano Today. 2022;45:101530. DOI
               19.  Xu S, Wang T, Hu X, et al. A dual chemodrug-loaded hyaluronan nanogel for differentiation induction therapy of refractory AML via
                  disrupting lysosomal homeostasis. Sci Adv. 2025;11:eado3923. DOI PubMed PMC
               20.  Xiang Y, Li N, Liu M, et al. Nanodrugs detonate lysosome bombs. Front Pharmacol. 2022;13:909504. DOI PubMed PMC
               21.  Yan H, Catania C, Bazan GC. Membrane-intercalating conjugated oligoelectrolytes: impact on bioelectrochemical systems. Adv Mater.
                  2015;27:2958-73. DOI PubMed
               22.  Zhou C, Chia GWN, Yong KT. Membrane-intercalating conjugated oligoelectrolytes. Chem Soc Rev. 2022;51:9917-32. DOI PubMed
               23.  Leifert D, Moreland AS, Limwongyut J, Mikhailovsky AA, Bazan GC. Photoswitchable conjugated oligoelectrolytes for a light-induced
                  change of membrane morphology. Angew Chem Int Ed Engl. 2020;59:20333-7. DOI PubMed
               24.  Limwongyut J, Nie C, Moreland AS, Bazan GC. Molecular design of antimicrobial conjugated oligoelectrolytes with enhanced
                  selectivity toward bacterial cells. Chem Sci. 2020;11:8138-44. DOI PubMed PMC
               25.  Moreland AS, Limwongyut J, Holton SJ, Bazan GC. Structural modulation of membrane-intercalating conjugated oligoelectrolytes
                  decouples outer membrane permeabilizing and antimicrobial activities. Chem Commun. 2023;59:12172-5. DOI PubMed
               26.  Wang B, Fronk SL, Rengert ZD, Limwongyut J, Bazan GC. Conjugated oligoelectrolytes: materials for acceleration of whole cell
                  biocatalysis. Chem Mater. 2018;30:5836-40. DOI
               27.  Wang B, Wang M, Mikhailovsky A, Wang S, Bazan GC. A membrane-intercalating conjugated oligoelectrolyte with high-efficiency
                  photodynamic antimicrobial activity. Angew Chem Int Ed Engl. 2017;56:5031-4. DOI PubMed
               28.  Du C, Gao D, Gao M, et al. Property regulation of conjugated oligoelectrolytes with polyisocyanide to achieve efficient photodynamic
                  antibacterial biomimetic hydrogels. ACS Appl Mater Interfaces. 2021;13:27955-62. DOI PubMed
               29.  Large DE, Abdelmessih RG, Fink EA, Auguste DT. Liposome composition in drug delivery design, synthesis, characterization, and
                  clinical application. Adv Drug Delivery Rev. 2021;176:113851. DOI PubMed
               30.  Lombardo D, Kiselev MA. Methods of liposomes preparation: formation and control factors of versatile nanocarriers for biomedical and
                  nanomedicine application. Pharmaceutics. 2022;14:543. DOI PubMed PMC
               31.  Wood CA, Han S, Kim CS, et al. Clinically translatable quantitative molecular photoacoustic imaging with liposome-encapsulated ICG
                  J-aggregates. Nat Commun. 2021;12:5410. DOI PubMed PMC
               32.  Ishow E, Clavier G, Miomandre F, Rebarz M, Buntinx G, Poizat O. Comprehensive investigation of the excited-state dynamics of
                  push-pull triphenylamine dyes as models for photonic applications. Phys Chem Chem Phys. 2013;15:13922-39. DOI PubMed
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