Allemani C, Matsuda T, Di Carlo V, Harewood R, Matz M, Nikšić M, Bonaventure A, Valkov M, Johnson CJ, Estève J, Ogunbiyi OJ, Silva JAE, Chen WQ, Eser S, Engholm G, Stiller AG, Monnereau A, Woods RR, Visser O, Lim GH, Aitken J, Weir HK, Coleman MP. World surveillance of developments in most cancers survival 2000–14 (CONCORD-3): evaluation of particular person data for 37513025 sufferers recognized with considered one of 18 cancers from 322 population-based registries in 71 international locations. Lancet. 2018;391:1023–75.
Bray F, Ferlay J, Soerjomataram I, Siegel RL, Torre LA, Jemal A. World most cancers statistics 2018: globocan estimates of incidence and mortality worldwide for 36 cancers in 185 international locations. CA Most cancers J Clin. 2018;68:394–424.
Thirajan M, Chen YH, Joshi P, Pandey RK. The position of porphyrin chemistry in tumor imaging and photodynamic remedy. Chem Soc Rev. 2011;40:340–62.
Wu H, Guo T, Nan J, Yang L, Liao G, Park HJ, Li J. Hyaluronic-acid-coated chitosan nanoparticles for insulin oral supply: fabrication, characterization, and hypoglycemic potential. Macromol Biosci. 2022;22:2100493.
Ai XZ, Mu J, Xing BG. Current advances of light-mediated. Theranostics. 2016;6:2439–57.
Chen JM, Fan TJ, Xie ZJ, Zeng QQ, Xue P, Zheng TT, Chen Y, Luo XL, Zhang H. Advances in nanomaterials for photodynamic remedy functions: standing and challenges. Biomaterials. 2020;237: 119827.
Nguyen TL, Choi Y, Kim J. Mesoporous silica as a flexible platform for most cancers immunotherapy. Adv Mater. 2019;31:1803953.
Wang J, Liang D, Qu ZH, Kislyakov IM, Kiselev VM, Liu J. PEGylated-folic acid-modified black phosphorus quantum dots as near-infrared brokers for dual-modality imaging-guided selective most cancers cell destruction. Nanophotonics. 2020;9:2425–35.
Liu HF, Solar YQ, Li ZH, Yang J, Aryee AA, Qu LB, Du D, Lin YH. Lysosome-targeted carbon dots for ratiometric imaging of formaldehyde in residing cells. Nanoscale. 2019;11:8458–63.
Zhang X, Xi ZQ, Machuki JO, Luo JJ, Yang DZ, Li JJ, Cai WB, Yang Y, Zhang LJ, Tian JW, Guo KJ, Yu YY, Gao FL. Gold cube-in-cube based mostly oxygen nanogenerator: a theranostic nanoplatform for modulating tumor microenvironment for exact chemo-phototherapy and multimodal imaging. ACS Nano. 2019;13:5306–25.
Yan ZL, Wang MY, Shi MK, He Y, Zhang Y, Qiu SH, Yang H, Chen HB, He H, Guo ZQ. Amphiphilic BODIPY dye aggregates in polymeric micelles for wavelength-dependent photo-induced most cancers remedy. J Mater Chem B. 2020;8:6886–97.
Li YJ, Hu J, Liu X, Liu Y, Lv SX, Dang JJ, Ji Y, He YL, Yin LC. Photodynamic therapy-triggered on-demand drug launch from ROS-responsive core-cross-linked micelles towards synergistic anti-cancer remedy. Nano Res. 2019;12:999–1008.
Shi J, Kantoff PW, Wooster R, Farokhzad OC. Most cancers nanomedicine: progress, challenges and alternatives. Nat Rev Most cancers. 2017;17:20–37.
Liao G, He F, Li Q, Zhong L, Zhao R, Chee H, Gao H, Fang B. Rising graphitic carbon nitride-based supplies for biomedical functions. Prog Mater Sci. 2020;112: 100666.
Zhang M, Zou Y, Zhong Y, Liao G, Yu C, Xu Z. Polydopamine-based tumor-targeted multifunctional reagents for pc tomography/fluorescence dual-mode bioimaging-guided photothermal remedy. ACS Appl Bio Mater. 2019;2:630–7.
Belfiore L, Saunders DN, Ranson M, Thurecht KJ, Storm G, Vine KL. In direction of medical translation of ligand-functionalized liposomes in focused most cancers remedy: challenges and alternatives. J Management Launch. 2018;277:1–13.
Furukawa H, Cordova KE, O’keeffe M, Yaghi OM. The chemistry and functions of metal-organic frameworks. Science. 2013;341:1230444.
Meek ST, Greathouse JA, Allendorf MD. Steel-organic frameworks: a quickly rising class of versatile nanoporous supplies. Adv Mater. 2011;23:249–67.
Kuppler RJ, Timmons DJ, Fang QR, Li JR, Makal TA, Younger MD, Yuan DQ, Zhao D, Zhuang WJ, Zhou HC. Potential functions of metal-organic frameworks. Coord Chem Rev. 2009;253:3042–66.
Chen GS, Kou XX, Huang SM, Tong LJ, Shen YJ, Zhu WS, Zhu F, Ouyang GF. Modulating the biofunctionality of metal-organic framework-encapsulated enzymes by controllable embedding patterns. Angew Chem Int Ed. 2020;59:2867–74.
Huang SM, Kou XX, Shen J, Chen GS, Ouyang GF. “Armor-plating” enzymes with metal-organic frameworks (MOFs). Angew Chem Int Ed. 2020;59:8786–98.
Mohammad RS, Navid R, Masoud M, Francis V, Leonid GV, Rafael L. Steel-organic frameworks (MOFs) for most cancers remedy. Supplies. 2021;14:7277.
Lai XD, Jiang H, Wang XM. Biodegradable metallic natural frameworks for multimodal imaging and concentrating on theranostics. Biosensors. 2021;11:299.
Celli JP, Spring BQ, Rizvi I, Evans CL, Samkoe KS, Verma S, Pogue BW, Hasan T. Imaging and photodynamic remedy: mechanisms, monitoring, and optimization. Chem Rev. 2010;110:2795–838.
Dolmans DE, Fukumura D, Jain RK. Photodynamic remedy for most cancers. Nat Rev Most cancers. 2003;3:380–7.
Yang G, Solar X, Liu J. Mild-responsive, singlet-oxygen-triggered on-demand drug launch from photosensitizer-doped mesoporous silica nanorods for most cancers mixture remedy. Adv Funct Mater. 2016;26:4722–32.
Chen XF, Tune JB, Chen XY, Yang HH. X-ray-activated nanosystems for theranostic functions. Chem Soc Rev. 2019;48:3073–101.
Duan W, Qiao S, Zhuo M, Solar J, Guo M, Xu F, Liu J, Wang T, Guo X, Zhang Y, Gao J, Huang Y, Zhang Z, Cheng P, Ma S, Chen Y. Multifunctional platforms: metal-organic frameworks for cutaneous and beauty remedy. Inside Chem. 2021;7:450–62.
Ng KK, Zheng G. Molecular interactions in natural nanoparticles for phototheranostic functions. Chem Rev. 2015;115:11012–42.
Plaetzer Ok, Krammer B, Berlanda J, Berr F, Kiesslich T. Photophysics and photochemistry of photodynamic remedy: elementary features. Lasers Med Sci. 2009;24:259–68.
Castano AP, Demidova TN, Hamblin MR. Mechanisms in photodynamic remedy: half one-photosensitizers, photochemistry and mobile localization. Photodiagnosis Photodyn Ther. 2004;1:279–93.
Ochsner M. Photophysical and photobiological processes within the photodynamic remedy of tumours. J Photochem Photobiol B Biol. 1997;39:1–18.
Juarranz Á, Jaén P, Sanz-Rodríguez F, Cuevas J, González S. Photodynamic remedy of most cancers. Fundamental ideas and functions. Clin Transl Oncol. 2008;10:148–54.
Henderson BW, Dougherty TJ. How does photodynamic remedy work? Photochem Photobiol. 1992;55:145–57.
Zhao D, Zhang W, Wu ZH, Xu H. Nanoscale metal-organic frameworks and their nanomedicine functions. Entrance Chem. 2022;9: 834171.
Zhao D, Yu S, Jiang WJ, Cai ZH, Li DL, Liu YL, Chen ZZ. Current progress in metal-organic framework based mostly fluorescent sensors for hazardous supplies detection. Molecules. 2022;27:2226.
Dong D, Zhao D, Lu Y, Solar WY. Photoluminescent metal-organic frameworks and their utility for sensing biomolecules. J Mater Chem A. 2019;7:22744–67.
Liu JT, Huang J, Zhang L, Lei JP. Multifunctional metal-organic framework heterostructures for enhanced most cancers remedy. Chem Soc Rev. 2021;50:1188–218.
Khoo VS, Dearnaley DP, Finnigan DJ, Padhani A, Tanner SF, Leach MO. Magnetic resonance imaging (MRI): issues and functions in radiotherapy remedy planning. Radiother Oncol. 1997;42:1–15.
Salvio SG, Rubén S, Fernando N, Ramon A, Félix B, Daniel RM. Coordination polymers nanoparticles for bioimaging. Coordin Chem Rev. 2021;432: 213716.
Hessamaddin S, Siamak J, Fatemeh O, Farzaneh R, Ahmad S, Mir RM, Mahmoud H, Younes H, Ahad M, Ali M. Nanoscale metal-organic frameworks: latest developments in synthesis, modifications and bioimaging functions. Chemosphere. 2021;281:30717.
Lei PP, Feng J, Zhang HJ. Rising biomaterials: taking full benefit of the intrinsic properties of uncommon earth components. Nano In the present day. 2020;35: 100952.
Rieter WJ, Taylor KML, An HY, Lin WL, Lin WB. Nanoscale metal-organic frameworks as potential multimodal distinction enhancing brokers. J Am Chem Soc. 2006;128:9024–5.
Wang Y-M, Liu W, Yin X-B. Self-limiting development nanoscale coordination polymers for fluorescence and magnetic resonance dual-modality imaging. Adv Funct Mater. 2016;26:8463–70.
Taylor KM, Rieter WJ, Lin W. Manganese-based nanoscale metal-organic frameworks for magnetic resonance imaging. J Am Chem Soc. 2008;130:14358–9.
Yang Y, Liu JJ, Liang C, Feng LZ, Fu TT, Dong ZL, Chao Y, Li YG, Lu G, Chen MW, Liu Z. Nanoscale metal-organic particles with fast clearance for magnetic resonance imaging-guided photothermal remedy. ACS Nano. 2016;10:2774–81.
Wan SS, Cheng Q, Zeng X, Zhang XZ. A Mn(III)-sealed metal-organic framework nanosystem for redox-unlocked tumor theranostics. ACS Nano. 2019;13:6561–71.
Kemp JA, Kwon YJ. Most cancers nanotechnology: present standing and views. Nano Convergence. 2021;8:34.
Horcajada P, Chalati T, Serre C, Gillet B, Sebrie C, Baati T, Eubank JF, Heurtaux D, Clayette P, Kreuz C, Chang JS, Hwang YK, Marsaud V, Bories PN, Cynober L, Gil S, Férey G, Couvreur P, Gref R. Porous metal-organic-framework nanoscale carriers as a possible platform for drug supply and imaging. Nat Mater. 2010;9:172–8.
Wang DD, Zhou JJ, Chen RH, Shi RH, Zhao GZ, Xia GL, Li R, Liu ZB, Tian J, Wang HJ, Guo Z, Wang HB, Chen QW. Controllable synthesis of dual-MOFs nanostructures for pH-responsive artemisinin supply, magnetic resonance and optical dual-model imaging-guided chemo/photothermal combinational most cancers remedy. Biomaterials. 2016;100:27–40.
Zhang LY, Liu C, Gao Y, Li ZH, Xing J, Ren WZ, Zhang LL, Li AG, Lu GM, Wu AG, Zeng LY. ZD2-engineered gold nanostar@metal-organic framework nanoprobes for T1-weighted magnetic resonance imaging and photothermal remedy particularly towards triple-negative breast most cancers. Adv Healthc Mater. 2018;7:1801144.
Meng Y, Zhang D, Solar Y, Dai Z, Zhang T, Yu D, Zhang G, Zheng X. Core–shell FePt-cube@covalent natural polymer nanocomposites: a multifunctional nanocatalytic agent for main and metastatic tumor remedy. J Mater Chem B. 2020;8:11021–32.
Meng Y, Zhang D, Chen X, Dai Z, Yao X, Cui P, Yu D, Zhang G, Zheng X. FePt nanoparticles embedded in metal-organic framework nanoparticles for tumor imaging and eradication. ACS Appl Nano Mater. 2020;3:4494–503.
Gao X, Zhai M, Guan W, Liu J, Liu Z, Damirin A. Controllable synthesis of a wise multifunctional nanoscale metal-organic framework for magnetic resonance/optical imaging and focused drug supply. ACS Appl Mater Interfaces. 2017;9:3455–62.
Wu M, Gao J, Wang F, Yang J, Tune N, Jin X, Mi P, Tian J, Luo J, Liang F, Yang Y. Multistimuli responsive core-shell nanoplatform constructed from Fe3O4@MOF outfitted with pillar[6]arene nanovalves. Small. 2018;14:1704440.
Chowdhuri AR, Bhattacharya D, Sahu SK. Magnetic nanoscale metallic natural frameworks for potential focused anticancer drug supply, imaging and as an MRI distinction agent. Dalton Trans. 2016;45:2963–73.
Kalra MK, Maher MM, Toth TL, Schmidt B, Westerman BL, Morgan HT, Saini S. Strategies and functions of automated tube present modulation for CT. Radiology. 2004;233:649–57.
Yang X, Gao L, Guo Q, Li Y, Ma Y, Yang J, Gong C, Yi C. Nanomaterials for radiotherapeutics-based multimodal synergistic most cancers remedy. Nano Res. 2020;13:2579–94.
Dekrafft KE, Boyle WS, Burk LM, Zhou O, Lin W. Zr-and Hf-based nanoscale metal-organic frameworks as distinction brokers for computed tomography. J Mater Chem. 2012;22:18139–44.
Zhang T, Wang L, Ma C, Wang WQ, Ding J, Liu S, Zhang XW, Xie ZG. BODIPY-containing nanoscale metal-organic frameworks as distinction brokers for computed tomography. J Mater Chem B. 2017;5:2330–6.
Yang Y, Chao Y, Liu J, Dong Z, He W, Zhang R, Yang Ok, Chen M, Liu Z. Core-shell and Co-doped nanoscale metal-organic particles (NMOPs) obtained through postsynthesis cation change for multimodal imaging and synergistic thermo-radiotherapy. NPG Asia Mater. 2017;9: e344.
Li X, Cai Z, Jiang L, He Z, Zhu J. Steel-ligand coordination nanomaterials for biomedical imaging. Bioconjug Chem. 2020;31:332–9.
Shang W, Zeng C, Du Y, Hui H, Liang X, Chi C, Wang Ok, Wang Z, Tian J. Core-shell gold nanood@metal-organic framework nanoprobes for multimodality prognosis of glioma. Adv Mater. 2017;29:1604381.
Basu S, Alavi A. PET-based personalised administration in medical oncology. PET Clinics. 2016;11:203–7.
Jacobson O, Chen X. Interrogating tumor metabolism and tumor microenvironments utilizing molecular positron emission tomography imaging theranostic approaches to enhance therapeutics. Pharmacol Rev. 2013;65:1214–56.
Hamoudeh M, Kamleh MA, Diab R, Fessi H. Radionuclides supply techniques for nuclear imaging and radiotherapy of most cancers. Adv Drug Deliv Rev. 2008;60:1329–46.
Duman FD, Forgan RS. Functions of nanoscale metal-organic frameworks as imaging brokers in biology and drugs. J Mater Chem B. 2021;9:3423–49.
Chen D, Yang D, Dougherty CA, Lu W, Wu H, He X, Cai T, Van Dort ME, Ross BD, Hong H. In vivo concentrating on and positron emission tomography imaging of tumor with intrinsically radioactive metal-organic frameworks nanomaterials. ACS Nano. 2017;11:4315–27.
Duan DB, Liu H, Xu MX, Chen MQ, Han YX, Shi YX, Liu ZB. Measurement-controlled synthesis of drug-loaded zeolitic imidazolate framework in aqueous resolution and measurement impact on their most cancers theranostics in vivo. ACS Appl Mater Interfaces. 2018;10:42165–74.
Erturk, S.M., Johnston, C., Tempany-Afdhal, C., Van den Abbeele, A.D.: Imaging instruments in human research-chapter 6. CTS., 87–104 (2009)
Liu D, Huxford RC, Lin W. Phosphorescent nanoscale coordination polymers as distinction brokers for optical imaging. Angew Chem Int Ed. 2011;50:3696–700.
Padmanabhan P, Kumar A, Kumar S, Chaudhary RK, Gulya’s B. Nanoparticles in apply for molecular-imaging functions: an summary. Acta Biomater. 2016;41:1–16.
Liu W, Wang YM, Li YH, Cai SJ, Yin XB, He XW, Zhang YK. Fluorescent imaging-guided chemotherapy-and-photodynamic twin remedy with nanoscale porphyrin metal-organic framework. Small. 2017;13:1603459.
Qian J, Feng Z, Fan X, Kuzmin A, Gomes ASL, Prasad PN. Excessive distinction 3-D optical bioimaging utilizing molecular and nanoprobes optically attentive to IR mild. Phys Rep. 2022;5:1–107.
Zhao H, Shu G, Zhu J, Fu Y, Gu Z, Yang D. Persistent luminescent metal-organic frameworks with long-lasting close to infrared emission for tumor web site activated imaging and drug supply. Biomaterials. 2019;217: 119332.
Ge X, Wong R, Anisa A, Ma S. Current improvement of metal-organic framework nanocomposites for biomedical functions. Biomaterials. 2022;281: 121322.
Foucault-Collet A, Gogick KA, White KA, Villette S, Pallier A, Collet G, Kieda C, Li T, Geib SJ, Rosi NL, Petoud S. Lanthanide close to infrared imaging in residing cells with Yb3+ nano metallic natural frameworks. PNAS. 2013;110:17199–204.
Chen H, Wang J, Shan D, Chen J, Zhang S, Lu X. Twin-emitting fluorescent metal-organic framework nanocomposites as a broad-range pH sensor for fluorescence imaging. Anal Chem. 2018;90:7056–63.
Wang YM, Xu Y, Zhang X, Cui Y, Liang Q, Liu C, Wang X, Wu S, Yang R. Single nano-sized metal-organic framework for bio-banoarchitectonics with In vivo fluorescence imaging and chemo-photodynamic remedy. Nanomaterials. 2022;12:287.
Gao X, Wang Y, Ji G, Cui R, Liu Z. One-pot synthesis of hierarchical-pore metallic–natural frameworks for drug supply and fluorescent imaging. CrystEngComm. 2018;20:1087–93.
Wang Y, Wu W, Liu J, Manghnani PN, Hu F, Ma D, The C, Wang B, Liu B. Most cancers-cell-activated photodynamic remedy assisted by Cu(II)-based metal-organic framework. ACS Nano. 2019;13:6879–90.
Haddad S, Abánades Lázaro I, Fantham M, Mishra A, Silvestre-Albero J, Osterrieth JW, Kaminski Schierle GS, Kaminski CF, Forgan RS, Fairen-Jimenez D. Design of a functionalized metal-organic framework system for enhanced focused supply to mitochondria. J Am Chem Soc. 2020;142:6661–74.
Deng Ok, Hou Z, Li X, Li C, Zhang Y, Deng X, Cheng Z, Liu J. Aptamer-mediated up-conversion core/MOF shell nanocomposites for focused drug supply and cell imaging. Sci Rep. 2015;5:7851.
Chowdhuri AR, Laha D, Pal S, Karmakar P, Sahu SK. One-pot synthesis of folic acid encapsulated upconversion nanoscale metallic natural frameworks for concentrating on, imaging and pH responsive drug launch. Dalton Trans. 2016;45:18120–32.
Li Y, Gecevicius M, Yan XP. Lengthy persistent phosphors—from fundamentals to functions. Chem Soc Rev. 2016;45:2090–136.
Solar SK, Wang HF, Yan XP. Engineering persistent luminescence nanoparticles for organic functions: from biosensing/bioimaging to theranostics. Accounts Chem Res. 2018;51:1131–43.
Lv Y, Ding D, Zhuang Y, Feng Y, Shi J, Zhang J, Zhou T-T, Chen H, Xie R-J. Chromium-doped zinc gallogermanate@zeolitic imidazolate framework-8: a multifunctional nanoplatform for rechargeable in vivo persistent luminescence imaging and pH-responsive drug launch. ACS Appl Mater Interfaces. 2019;11:1907–16.
Liu J, Liu T, Du P, Zhang L, Lei J. Steel-organic framework (MOF) hybrid as a tandem catalyst for enhanced remedy in opposition to hypoxic tumor cells. Angew Chem Int Ed Engl. 2019;58:7808–12.
Zackrisson S, Van De Ven SMWY, Gambhir SS. Mild in and sound out: rising translational methods for photoacoustic imaging. Most cancers Res. 2014;74:979–1004.
Zhang HF, Maslov Ok, Stoica G, Wang LV. Useful photoacoustic microscopy for high-resolution and noninvasive in vivo imaging. Nat Biotechnol. 2006;24:848–51.
Kolkman RG, Manufacturers PJ, Steenbergen W, Van Leeuwen TG. Actual-time in vivo photoacoustic and ultrasound imaging. J Biomed Decide. 2008;13: 050510.
Zhang J, Chen H, Zhou T, Wang L, Gao D, Zhang X, Liu Y, Wu C, Yuan Z. A PIID-DTBT based mostly semi-conducting polymer dots with broad and robust optical absorption within the visible-light area: extremely efficient distinction brokers for multiscale and multi-spectral photoacoustic imaging. Nano Res. 2017;10:64–76.
Zhu Y, Xin N, Qiao Z, Chen S, Zeng L, Zhang Y, Wei D, Solar J, Fan H. Bioactive MOFs based mostly theranostic agent for extremely efficient mixture of multimodal imaging and chemo-phototherapy. Adv Funct Mater. 2020;9:2000205.
Zhang Y, Wang L, Liu L, Lin L, Liu F, Xie Z, Tian H, Chen X. Engineering metal-organic frameworks for photoacoustic imaging-guided chemo-/photothermal combinational tumor remedy. ACS Appl Mater Interfaces. 2018;10:41035–45.
Yang P, Tian Y, Males Y, Guo R, Peng H, Jiang Q, Yang W. Steel-organic frameworks-derived carbon nanoparticles for photoacoustic imaging-guided photothermal/photodynamic mixed remedy. ACS Appl Mater Interfaces. 2018;10:42039–49.
Zhang D, Xu H, Zhang X, Liu Y, Wu M, Li J, Yang H, Liu G, Liu X, Liu J, Yuan Z. Self-quenched metal-organic particles as dual-mode therapeutic brokers for photoacoustic imaging-guided second near-infrared window photochemotherapy. ACS Appl Mater Interfaces. 2018;10:25203–12.
Cai W, Wang J, Liu H, Chen W, Wang J, Du L, Hu J, Wu CS. Gold nanorods@metal-organic framework core-shell nanostructure as distinction agent for photoacoustic imaging and its biocompatibility. Compd. 2018;748:193–8.
Yang J, Yang YW. Steel-organic framework-based most cancers theranostic nanoplatforms. View. 2020;1:20.
Zou Y, Solar F, Liu C, Yu C, Zhang M, He Q, Xiong Y, Xu Z, Yang S, Liao G. A novel nanotheranostic agent for dual-mode imaging-guided most cancers remedy based mostly on europium complexes-grafted-oxidative dopamine. Chem Eng J. 2019;357:237–47.
Li Y, Tang JL, He LC, Liu Y, Liu YL, Chen CY, Tang ZY. Core-shell upconversion nanoparticle@metal-organic framework nanoprobes for luminescent/magnetic dual-mode focused imaging. Adv Mater. 2015;27:4075–80.
Cai W, Gao HY, Chu CC, Wang XY, Wang JQ, Zhang PF, Lin G, Li WG, Liu G, Chen XY. Engineering phototheranostic nanoscale metal-organic frameworks for multimodal imaging-guided most cancers remedy. ACS Appl Mater Interfaces. 2017;9:2040–51.
Zhang HY, Hao CL, Qu AH, Solar MZ, Xu LG, Xu CL, Kuang H. Heterostructures of MOFs and nanorods for multimodal imaging. Adv Funct Mater. 2018;28:1805320.
Xiong YX, Solar F, Liu P, Yang Z, Cao JG, Liu HJ, Liu P, Hu JL, Xu ZS, Yang SL. A biomimetic one-pot synthesis of versatile Bi2S3/FeS2 theranostic nanohybrids for tumor-targeted photothermal remedy guided by CT/MR dual-modal imaging. Chem Eng J. 2019;378: 122172.
Liu YH, Lv SB, Liu DP, Tune FL. Current improvement of amorphous metallic coordination polymers for most cancers remedy. Acta Bio. 2020;116:16–31.
Tian Q, Xue FF, Wang YR, Cheng YY, An L, Yang SP, Chen XY, Huang G. Current advances in enhanced chemodynamic remedy methods. Nano In the present day. 2021;39: 101162.
Doughty ACV, Hoover AR, Layton E, Murray CK, Howard EW, Chen WR. Nanomaterial functions in photothermal remedy for most cancers. Supplies. 2019;12:779.
Hu JJ, Cheng YJ, Zhang XZ. Current advances in nanomaterials for enhanced photothermal remedy of tumors. Nanoscale. 2018;10:22657–72.
Jung HS, Verwilst P, Sharma A, Shin J, Sessler JL, Kim JS. Natural molecule-based photothermal brokers: an increasing photothermal remedy universe. Chem Soc Rev. 2018;47:2280–97.
Zou Y, Jin H, Solar F, Dai X, Xu Z, Yang S, Liao G. Design and synthesis of a Lead sulfide based mostly nanotheranostic agent for pc tomography/magnetic resonance dual-mode-bioimaging-guided photothermal remedy. ACS Appl Nano Mater. 2018;1:2294–305.
Mo Z, Qiu M, Zhao Ok, Hua H, Xua Q, Cao J, Luo Y, Liu L, Xu Z, Yi C, Xiong Z, Liao G, Yang S. Multifunctional phototheranostic nanoplatform based mostly on polydopamine-manganese dioxide-IR780 iodide for efficient magnetic resonance imaging-guided synergistic photodynamic/photothermal remedy. J Colloid Interface Sci. 2022;611:193–204.
Lü BZ, Chen YF, Li PY, Wang B, Müllen Ok, Yin MY. Steady radical anions generated from a porous perylenediimide metal-organic framework for reinforcing near-infrared photothermal conversion. Nat Commun. 2019;10:767.
Yang Y, Deng YY, Huang JB, Fan X, Cheng C, Nie CX, Ma L, Zhao WF, Zhao CS. Measurement-transformable metal-organic framework-derived nanocarbons for localized chemo-photothermal bacterial ablation and wound disinfection. Adv Funct Mater. 2019;29:1900143.
Liu F, Lin L, Zhang Y, Wang YB, Sheng S, Xu CN, Tian HY, Chen XS. A tumor-microenvironment-activated nanozyme-mediated theranostic nanoreactor for imaging-guided mixed tumor remedy. Adv Mater. 2019;31:1902885.
Deng XR, Liang S, Cai XC, Huang SS, Cheng ZY, Shi YS, Pang ML, Ma PA, Lin J. Yolk–shell structured Au nanostar@Steel-organic framework for synergistic chemo-photothermal remedy within the second near-infrared window. Nano Lett. 2019;19:6772–80.
Wang ZJ, Yu WJ, Yu N, Li X, Feng YR, Geng P, Wen M, Li M, Zhang H, Chen ZG. Development of CuS@Fe-MOF nanoplatforms for MRI-guided synergistic photothermal-chemo remedy of tumors. Chem Eng J. 2020;400: 125877.
Zhang C, Zhao KL, Bu WB, Ni DL, Liu YY, Feng JW, Shi JL. Marriage of scintillator and semiconductor for synchronous radiotherapy and deep photodynamic remedy with diminished oxygen dependence. Angew Chem Int Ed. 2015;54:1790–4.
Hudson AB, Quezada-Novoa V, Ashlee JH. Steel-organic frameworks for the era of reactive oxygen species. Chem Phys Rev. 2021;2:041301.
Chen JJ, Zhu YF, Kaskel S. Porphyrin-based metal-organic frameworks for biomedical functions. Angew Chem Int Ed. 2020;59:2–28.
Lu KD, He CB, Lin WB. Nanoscale metal-organic framework for extremely efficient photodynamic remedy of resistant head and neck most cancers. J Am Chem Soc. 2014;136:16712–5.
Lu KD, He CB, Lin WB. A Chlorin-based nanoscale metal-organic framework for photodynamic remedy of colon cancers. J Am Chem Soc. 2015;137:7600–3.
Park J, Jiang Q, Feng DW, Mao LQ, Zhou HC. Measurement-controlled synthesis of porphyrinic metal-organic framework and functionalization for focused photodynamic remedy. J Am Chem Soc. 2016;138:3518–25.
Liu C, Liu B, Zhao J, Di ZH, Chen DQ, Gu ZJ, Li LL, Zhao YL. Nd3+-sensitized upconversion metal-organic frameworks for mitochondria-targeted amplified photodynamic remedy. Angew Chem Inter Ed. 2020;59:2634–8.
Li Y, Di Z, Gao J, Cheng P, Di C, Zhang F, Liu B, Shi X, Solar L, Li L, Yan C. Heterodimers fabricated from upconversion nanoparticles and metal-organic frameworks. J Am Chem Soc. 2017;139:13804–10.
Shao Y, Liu B, Di Z, Zhang G, Solar L, Li L, Yan C. Engineering of upconverted metal-organic frameworks for near-infrared light-triggered combinational photodynamic/chemo-/immunotherapy in opposition to hypoxic tumors. J Am Chem Soc. 2020;142:3939–46.
Zhang Y, Wang FM, Liu CQ, Wang ZZ, Kang LH, Huang YY, Dong Ok, Ren JS, Qu XG. Nanozyme embellished metal-organic frameworks for enhanced photodynamic remedy. ACS Nano. 2018;12:651–61.
Wang WQ, Wang L, Li ZS, Xie ZG. BODIPY-containing nanoscale metal-organic frameworks for photodynamic remedy. Chem Comm. 2016;52:5402–5.
Park J, Jiang Q, Feng DW, Zhou HC. Managed era of singlet oxygen in residing cells with tunable ratios of the photochromic change in metal-organic frameworks. Angew Chem Int Ed. 2016;55:7188–93.
Cai HJ, Shen TT, Zhang J, Shan CF, Jia JG, Li X, Liu WS, Tang Y. A core-shell metal-organic-framework (MOF)-based sensible nanocomposite for environment friendly NIR/H2O2-responsive photodynamic remedy in opposition to hypoxic tumor cells. J Mater Chem B. 2017;5:2390–4.
Kumar B, Koul S, Khandrika L, Meacham RB, Koul HK. Oxidative stress is inherent in prostate most cancers cells and is required for aggressive phenotype. Most cancers Res. 2008;68:1777–85.
Murphy MP. How mitochondria produce reactive oxygen species. Biochem J. 2009;417:1–13.
Mo Z, Li Q, Zhao Ok, Xu Q, Hu H, Chen X, Luo Y, Chi B, Liu L, Fang X, Liao G, Xu Z, Wang J, Yang S. A nanoarchitectonic method permits triple modal synergistic therapies to reinforce antitumor results. ACS Appl Mater Interfaces. 2022;14:10001–14.
Guan Q, Zhou LL, Dong B. Ferroptosis in most cancers therapeutics: a supplies chemistry perspective. J Mater Chem B. 2021;9:8906–36.
Zhong YY, Li XS, Chen JH, Wang XX, Wei LT, Fang LQ, Kumar A, Zhuang SZ, Liu JQ. Current advances in MOF-based nanoplatforms producing reactive species for chemodynamic remedy. Dalton Trans. 2020;49:11045–58.
Liu X, Jin YL, Liu TT, Yang SJ, Zhou MX, Wang WQ, Yu HJ. Iron-based theranostic nanoplatform for enhancing chemodynamic remedy of most cancers. ACS Biomaterials Sci Eng. 2020;6:4834–45.
Ni Ok, Aung T, Li S, Fatuzzo N, Liang X, Lin W. Nanoscale metal-organic framework mediates radical remedy to reinforce most cancers immunotherapy. Chem. 2019;5:1892–913.
Xie ZX, Liang S, Cai XC, Ding BB, Huang SS, Hou ZY, Ma PA, Cheng ZY, Lin J. O2-Cu/ZIF-8@Ce6/ZIF-8@F127 Composite as a tumor microenvironment-responsive nanoplatform with enhanced photo-/chemodynamic antitumor efficacy. ACS Appl Mater Interfaces. 2019;11:31671–80.
Li S, Tan L. Meng, X: Nanoscale metal-organic frameworks: synthesis, biocompatibility, imaging functions, and thermal and dynamic remedy of tumors. Adv Funct Mater. 2020;30:1908924.
Ni Ok, Lan G, Lin W. Nanoscale Steel−natural frameworks generate reactive oxygen species for most cancers remedy. ACS Cent Sci. 2020;6:861–8.
Chao Y, Liang C, Yang Y, Wang G, Maiti D, Tian LF, Pan W, Wu S, Yang Ok, Liu Z. Extremely efficient radioisotope most cancers remedy with a non-therapeutic isotope delivered and sensitized by nanoscale coordination polymers. ACS Nano. 2018;12:7519–28.
Ni Ok, Lan G, Chan C, Quigley B, Lu Ok, Aung T, Guo N, La Riviere P, Weichselbaum RR, Lin W. Nanoscale metal-organic frameworks improve radiotherapy to potentiate checkpoint blockade immunotherapy. Nat Commun. 2018;9:2351.
Chen Y, Zhong H, Wang J, Wan X, Li Y, Pan W, Li N, Tang B. Catalase-like metallic–natural framework nanoparticles to reinforce radiotherapy in hypoxic most cancers and forestall most cancers recurrence. Chem Sci. 2019;10:5773–8.
Ma T, Liu Y, Wu Q, Luo L, Cui Y, Wang X, Chen X, Tan L, Meng X. Quercetin-modified metallic–natural frameworks for twin sensitization of radiotherapy in tumor tissues by inhibiting the carbonic anhydrase IX. ACS Nano. 2019;13:4209–19.
Du C, Zhou M, Jia F, Ruan L, Lu H, Zhang J, Zhu B, Liu X, Chen J, Chai Z, Hu Y. D-arginine-loaded metal-organic frameworks nanoparticles sensitize osteosarcoma to radiotherapy. Biomaterials. 2021;269: 120642.