10.1007/s40097-022-00480-7

Surface nanoarchitectured metal–organic frameworks-based sensor for reduced glutathione sensing: a review

  1. Department of Pharmaceutical Chemistry, H. R. Patel Institute of Pharmaceutical Education and Research, Dhule, Maharashtra, 425405, IN
  2. Department of Microbiology, R. C. Patel Arts, Science, and Commerce College, Dhule, Maharashtra, 425405, IN
  3. Department of Pharmaceutical Sciences, College of Pharmacy and Health Sciences, Ajman University, Ajman, AE Center of Medical and Bio-Allied Health Sciences Research, Ajman University, Ajman, AE

Published in Issue 02-03-2022

How to Cite

Khan, Z. G., Patil, M. . R., Nangare, S. N., Patil, A. G., Boddu, S. H. S., Tade, R. S., & Patil, P. O. (2022). Surface nanoarchitectured metal–organic frameworks-based sensor for reduced glutathione sensing: a review. Journal of Nanostructure in Chemistry, 12(6 (December 2022). https://doi.org/10.1007/s40097-022-00480-7

Abstract

Abstract Reduced glutathione (GSH) is a major biomarker related to a variety of diseases including cancers, cardiovascular disease, liver damage, autism in children, and others. Although the human body can synthesize GSH, it falls well short of meeting the needs of all of the body's functions. Consuming GSH-containing meals may help in solving the problem of low GSH levels. As a result, the development of an effective probe for measuring GSH in foods, agricultural products, nutritional supplements, and other products is critical for food safety and disease diagnostic. This, in turn, leads to the creation of metal–organic frameworks (MOFs) as nanoporous sensors for sensing of GSH in complicated samples such as urine, human serum samples, various foods, and vegetables, etc. Unfortunately, widely utilized sensors have numerous drawbacks such as selectivity, sensitivity, detection speed, simplicity, and so on. As a result, there is a great demand for the upgrading of extremely sensitive, selective, fast, and robust biosensors for GSH measurement. Presently, the structural design of MOFs has piqued the interest of researchers for detection of GSH owing to its remarkable and adaptable qualities such as high sensitivity, excellent selectivity in clinical samples, food components, agriculture goods, nutritional supplements, and so on. The methods and tactics for measuring GSH utilizing MOFs-based sensors, such as fluorescent, colorimetric, electrochemical, and ratiometric sensors, are summarized. In addition, detail explanation regarding synthesis of MOFs, fabrication of DNA conjugated MOFs, and enzyme-functionalized MOFs for specific sensing of GSH has been explored. Development of novel strategies for selective sensing of GSH with respect to all categories has been summarized. Remarkably, the low detection limit for GSH in the M to nM range was demonstrated by surface nanoarchitectured MOFs-centered biosensors. Finally, current challenges and future prospects for advanced applications of MOFs-based biosensors are highlighted. Eventually, this review may aid both academic and industrial researchers in the rational development of MOFs-based biosensors for GSH sensing. Graphical abstract Surface architectured MOFs mediated biosensor for reduced glutathione sensing.

Keywords

  • Glutathione,
  • Biothiols,
  • Metal–organic framework,
  • Fluorescent biosensor,
  • Colorimetric biosensor,
  • Electrochemical biosensor

References

  1. Wang et al. (2021) Simple turn-on fluorescent sensor for discriminating Cys/Hcy and GSH from different fluorescent signals (pp. 2244-2253) https://doi.org/10.1021/acs.analchem.0c04100
  2. He, L., Tao, H., Koo, S., Chen, G., Sharma, A., Chen, Y., Lim, I.-T., Cao, Q.-Y Kim, J. S.: Multifunctional fluorescent nanoprobe for sequential detections of Hg
  3. 2+
  4. ions and biothiols in live cells. ACS Appl. Bio Mater.
  5. 1
  6. , 871–878 (2018).
  7. Lu (2009) Regulation of glutathione synthesis (pp. 42-59) https://doi.org/10.1016/j.mam.2008.05.005
  8. Noctor et al. (2011) Glutathione https://doi.org/10.1199/tab.0142
  9. Ugalde et al. (2021) Chloroplast-derived photo-oxidative stress causes changes in H2O2 and EGSH in other subcellular compartments (pp. 125-141) https://doi.org/10.1093/plphys/kiaa095
  10. Mukherjee et al. (2021) Pomegranate polyphenols attenuate inflammation and hepatic damage in tumor-bearing mice: crucial role of NF-κB and the Nrf2/GSH axis https://doi.org/10.1016/j.jnutbio.2021.108812
  11. Wood et al. (2003) Structure, mechanism and regulation of peroxiredoxins (pp. 32-40) https://doi.org/10.1016/S0968-0004(02)00003-8
  12. Khan and Patil (2020) A comprehensive review on carbon dots and graphene quantum dots based fluorescent sensor for biothiols https://doi.org/10.1016/j.microc.2020.105011
  13. Gawryluk et al. (2011) Decreased levels of glutathione, the major brain antioxidant, in post-mortem prefrontal cortex from patients with psychiatric disorders (pp. 123-130) https://doi.org/10.1017/S1461145710000805
  14. Paolicchi et al. (2002) Glutathione catabolism as a signaling mechanism (pp. 1027-1035) https://doi.org/10.1016/S0006-2952(02)01173-5
  15. Pawlik-Skowrońska et al. (2004) Arsenic availability, toxicity and direct role of GSH and phytochelatins in As detoxification in the green alga Stichococcus bacillaris (pp. 201-212) https://doi.org/10.1016/j.aquatox.2004.09.003
  16. Wang et al. (2021) A traceable, GSH/pH dual-responsive nanoparticles with spatiotemporally controlled multiple drugs release ability to enhance antitumor efficacy https://doi.org/10.1016/j.colsurfb.2021.111866
  17. Hanko et al. (2019) Overview and recent advances in electrochemical sensing of glutathione—a review (pp. 1-27) https://doi.org/10.1016/j.aca.2019.02.052
  18. Yang et al. (2010) Hepatoprotective effects of apple polyphenols on CCl4-induced acute liver damage in mice (pp. 6525-6531) https://doi.org/10.1021/jf903070a
  19. Harfield et al. (2012) Electrochemical determination of glutathione: a review (pp. 2285-2296) https://doi.org/10.1039/c2an35090d
  20. Gao et al. (2017) Development of a novel lysosome-targeted ruthenium (II) complex for phosphorescence/time-gated luminescence assay of biothiols (pp. 4517-4524) https://doi.org/10.1021/acs.analchem.6b04925
  21. Guan et al. (2019) Bismuth-carboxylate ligand 1, 3, 6, 8-Tetrakis (p-benzoic acid) pyrene frameworks, photophysical properties, biological imaging, and fluorescent sensor for biothiols (pp. 23287-23296)
  22. Kaymak et al. (2021) International journal of agriculture, environment and food sciences (pp. 107-121) https://doi.org/10.31015/jaefs.2021.1.14
  23. Jiao et al. (2019) One-step synthesis of label-free ratiometric fluorescence carbon dots for the detection of silver ions and glutathione and cellular imaging applications (pp. 16822-16829) https://doi.org/10.1021/acsami.9b01319
  24. Chen et al. (2018) Visual assay of glutathione in vegetables and fruits using quantum dot ratiometric hybrid probes (pp. 6431-6438) https://doi.org/10.1021/acs.jafc.8b00662
  25. Zhang et al. (2021) Visual assay of glutathione in vegetables and fruits using quantum dot ratiometric hybrid probes (pp. 569-588) https://doi.org/10.1016/j.tifs.2021.10.024
  26. Mehrotra (2016) Biosensors and their applications—a review (pp. 153-159) https://doi.org/10.1016/j.jobcr.2015.12.002
  27. Polshettiwar et al. (2021) Recent trends on biosensors in healthcare and pharmaceuticals: an overview (pp. 131-136) https://doi.org/10.5530/ijpi.2021.2.25
  28. Zhang et al. (2021) Recent advances in biosensors for in vitro detection and in vivo imaging of DNA methylation https://doi.org/10.1016/j.bios.2020.112712
  29. Nasu et al. (2021) Structure-and mechanism-guided design of single fluorescent protein-based biosensors (pp. 509-518) https://doi.org/10.1038/s41589-020-00718-x
  30. Zhang, Y., Lyu, H. (2021) Application of biosensors based on nanomaterials in cancer cell detection. J Phys Conf Ser. IOP Publishing, p 012149 (2021)
  31. Maddali et al. (2021) Optical biosensors for virus detection: prospects for SARS-CoV-2/COVID-19 https://doi.org/10.1002/cbic.202000744
  32. Haleem et al. (2021) Biosensors applications in medical field: a brief review https://doi.org/10.1016/j.sintl.2021.100100
  33. Zhu et al. (2019) A turn-on MOF-based luminescent sensor for highly selective detection of glutathione (pp. 317-323) https://doi.org/10.1016/j.jssc.2018.11.032
  34. Zhu et al. (2020) A colorimetric biosensor for simultaneous ochratoxin A and aflatoxins B1 detection in agricultural products https://doi.org/10.1016/j.foodchem.2020.126544
  35. de Almeida Ferraz, N. V., Vasconcelos, W. S., Silva, C. S., Junior, S. A., Amorim, C. G., Montenegro, M. D. C. B. S., da Cunha Areias, M. C.: Gold-copper metal-organic framework nanocomposite as a glassy carbon electrode modifier for the voltammetric detection of glutathione in commercial dietary supplements Sensors and Actuators. B: Chemical.
  36. 307
  37. , 127636 (2020).
  38. Zaidi and Shin (2016) A review on the latest developments in nanostructure-based electrochemical sensors for glutathione (pp. 1745-1754) https://doi.org/10.1039/C5AY03140K
  39. Jalili et al. (2019) Dual-colored carbon dot encapsulated metal-organic framework for ratiometric detection of glutathione https://doi.org/10.1016/j.snb.2019.126775
  40. Sulaiman et al. (2020) A review on colorimetric methods for determination of organophosphate pesticides using gold and silver nanoparticles (pp. 1-22)
  41. Halawa et al. (2020) Turn-on fluorescent glutathione detection based on lucigenin and MnO2 nanosheets (pp. 3542-3549) https://doi.org/10.1039/C9TB02158B
  42. Khan and Patil (2020) A comprehensive review on carbon dots and graphene quantum dots based fluorescent sensor for biothiols https://doi.org/10.1016/j.microc.2020.105011
  43. Zheng et al. (2017) Universal ratiometric photoelectrochemical bioassay with target-nucleotide transduction-amplification and electron-transfer tunneling distance regulation strategies for ultrasensitive determination of microRNA in cells (pp. 9445-9451) https://doi.org/10.1021/acs.analchem.7b02270
  44. Ma et al. (2021) Targeting enrichment and correlation studies of glutathione and homocysteine in IgAVN patient urine based on a core–shell zr-based metal–organic framework (pp. 40070-40078) https://doi.org/10.1021/acsami.1c09967
  45. Wang et al. (2021) Design strategies of two-dimensional metal–organic frameworks toward efficient electrocatalysts for N2 reduction: cooperativity of transition metals and organic linkers (pp. 19247-19254) https://doi.org/10.1039/D1NR06366A
  46. Patil, P. O., More, M. P., Khan, Z. G., Tade, R. S., Deshmukh, P. K., Patil, A. G. Bari, S. B. (2019). Antibody-Mediated Diagnosis of Biomolecules, (Elsevier, pp. 165–193).
  47. Ghosh, S., Steinke, F., Rana, A., Alam, M., Biswas, S.: A metal‐organic framework with allyloxy functionalization for aqueous‐phase fluorescence recognition of Pd (II) ion European. Inorg. Chem. (2021).
  48. Patil et al. (2019) Graphene-based nanocomposites for sensitivity enhancement of surface plasmon resonance sensor for biological and chemical sensing: a review https://doi.org/10.1016/j.bios.2019.111324
  49. Yan et al. (2020) Privacy-preserving localization for underwater sensor networks via deep reinforcement learning (pp. 1880-1895) https://doi.org/10.1109/TIFS.2020.3045320
  50. Kreno et al. (2012) Metal–organic framework materials as chemical sensors (pp. 1105-1125) https://doi.org/10.1021/cr200324t
  51. Dybtsev and Bryliakov (2021) Asymmetric catalysis using metal-organic frameworks https://doi.org/10.1016/j.ccr.2021.213845
  52. Lawson et al. (2021) Metal–organic frameworks for drug delivery: a design perspective (pp. 7004-7020) https://doi.org/10.1021/acsami.1c01089
  53. Yang et al. (2021) Five lanthanide-based metal–organic frameworks built from a π-conjugated ligand with isophthalate units featuring sensitive fluorescent sensing for DMF and acetone molecules (pp. 2954-2961) https://doi.org/10.1021/acs.cgd.1c00116
  54. Nangare et al. (2021) Surface architectured metal organic frameworks-based biosensor for ultrasensitive detection of uric acid: recent advancement and future perspectives https://doi.org/10.1016/j.microc.2021.106567
  55. Fu et al. (2021) Extraordinary strength-ductility in gradient amorphous structured Zr-based alloy https://doi.org/10.1016/j.jallcom.2021.161507
  56. Du et al. (2021) A review of metal organic framework (MOFs)-based materials for antibiotics removal via adsorption and photocatalysis https://doi.org/10.1016/j.chemosphere.2020.129501
  57. Grancha et al. (2021) Synthesis of polycarboxylate rhodium (ii) metal–organic polyhedra (MOPs) and their use as building blocks for highly connected metal–organic frameworks (MOFs) (pp. 5729-5733) https://doi.org/10.1002/anie.202013839
  58. Alencar Filho, J. M. T., Sampaio, P. A., Carvalho, I. S., Silva, A. R., Pereira, E. C. V., Amariz, I. A. e., Nishimura, R. H. V., Araújo, E. C. d. C., Rolim-Neto, P. J., Rolim, L. A.: Metal organic frameworks (MOFs) with therapeutic and biomedical applications: a patent review. Expert Opin Ther Pat (2021).
  59. Wang, K., Li, Q., Ren, Z., Li, C., Chu, Y., Wang, Z., Zhang, M., Wu, H., Zhang, Q.: 2D metal–organic frameworks (MOFs) for high‐performance batcap hybrid devices small.
  60. 16
  61. , 2001987 (2020).
  62. Zhang et al. (2018) Luminescent sensors based on metal-organic frameworks (pp. 28-45) https://doi.org/10.1016/j.ccr.2017.06.007
  63. He et al. (2022) Metal–organic framework supported Au nanoparticles with organosilicone coating for high-efficiency electrocatalytic N2 reduction to NH3 https://doi.org/10.1016/j.apcatb.2021.120840
  64. Nguyen and Cohen (2010) Moisture-resistant and superhydrophobic metal—organic frameworks obtained via postsynthetic modification (pp. 4560-4561) https://doi.org/10.1021/ja100900c
  65. Cohen (2017) The postsynthetic renaissance in porous solids (pp. 2855-2863) https://doi.org/10.1021/jacs.6b11259
  66. Jiang et al. (2007) A highly selective fluorescent probe for thiophenols (pp. 8445-8448) https://doi.org/10.1002/anie.200702271
  67. Sharma and Ghosh (2018) Metal–organic framework-based selective sensing of biothiols via chemidosimetric approach in water (pp. 254-258) https://doi.org/10.1021/acsomega.7b01891
  68. Li et al. (2021) Rational design, synthesis, and applications of carbon dots@ metal–organic frameworks (CD@ MOF) based sensors https://doi.org/10.1016/j.trac.2020.116163
  69. Zhang et al. (2019) Ultrathin films of a metal-organic framework prepared from 2-methylimidazole, manganese (II) and cobalt (II) with strong oxidase-mimicking activity for colorimetric determination of glutathione and glutathione reductase activity (pp. 1-9)
  70. Chen et al. (2020) Colorimetric and fluorescent dual-identification of glutathione based on its inhibition on the 3D ball-flower shaped Cu-hemin-MOF’s peroxidase-like activity (pp. 1-10) https://doi.org/10.1007/s00604-020-04565-4
  71. Mahmoud, A. M., Alkahtani, S. A., El-Wekil, M. M.: Highly selective and sensitive electrochemical determination of cysteine based on complexation with gold nanoparticle–modified copper-based metal organic frameworks. Anal. Bioanal. Chem. 1–11 (2022).
  72. Gui et al. (2019) Recent advances in dual-emission ratiometric fluorescence probes for chemo/biosensing and bioimaging of biomarkers (pp. 82-103) https://doi.org/10.1016/j.ccr.2019.01.004
  73. Wang et al. (2018) Ratiometric fluorescence sensor based on cholesterol oxidase-functionalized mesoporous silica nanoparticle@ ZIF-8 core-shell nanocomposites for detection of cholesterol (pp. 708-713) https://doi.org/10.1016/j.talanta.2018.06.019
  74. Gu et al. (2020) Metal–organic frameworks (MOFs)-boosted filtration membrane technology for water sustainability https://doi.org/10.1063/5.0002905
  75. Liu et al. (2020) Mixed-ligand strategy for the construction of photochromic metal–organic frameworks driven by electron-transfer between nonphotoactive units (pp. 7350-7355) https://doi.org/10.1021/acs.cgd.0c01018
  76. Zhang et al. (2020) Rational construction of porous metal–organic frameworks for uranium (VI) extraction: the strong periodic tendency with a metal node (pp. 14087-14094) https://doi.org/10.1021/acsami.0c02121
  77. Wang et al. (2020) Metal-organic frameworks for stimuli-responsive drug delivery https://doi.org/10.1016/j.biomaterials.2019.119619
  78. Karmakar et al. (2020) A review of metal-organic frameworks (MOFs) as energy-efficient desiccants for adsorption driven heat-transformation applications https://doi.org/10.1016/j.apenergy.2020.115070
  79. Li et al. (2020) Integration of fluorescent probes into metal–organic frameworks for improved performances (pp. 33879-33893) https://doi.org/10.1039/D0RA04907G
  80. Mancuso et al. (2020) Electronic structure modeling of metal–organic frameworks (pp. 8641-8715) https://doi.org/10.1021/acs.chemrev.0c00148
  81. Butova et al. (2016) Metal-organic frameworks: structure, properties, methods of synthesis and characterization https://doi.org/10.1070/RCR4554
  82. Wang et al. (2020) Two-dimensional MOF and COF nanosheets: synthesis and applications in electrochemistry Chem (pp. 6402-6422) https://doi.org/10.1002/chem.202000294
  83. Ghanbari, T., Abnisa, F. and Daud, W. M. A. W.: A review on production of metal organic frameworks (MOF) for CO
  84. 2
  85. adsorption. Sci. Total Environ.
  86. 707
  87. , 135090 (2020).
  88. Goetjen et al. (2020) Metal–organic framework (MOF) materials as polymerization catalysts: a review and recent advances (pp. 10409-10418) https://doi.org/10.1039/D0CC03790G
  89. Tan et al. (2019) Mixed-solvothermal synthesis of MIL-101 (Cr) and its water adsorption/desorption performance (pp. 2983-2990) https://doi.org/10.1021/acs.iecr.8b05243
  90. Rojas-Buzo et al. (2021) Tailoring Lewis/Brønsted acid properties of MOF nodes via hydrothermal and solvothermal synthesis: simple approach with exceptional catalytic implications (pp. 10106-10115)
  91. Mohammadinezhad and Akhlaghinia (2021) Engineered superparamagnetic core–shell metal–organic frame-work (Fe3O4@Ni–Co-BTC NPs) with enhanced photocatalytic activity for selective aerobic oxidation of alcohols under solar light irradiation (pp. 107-123) https://doi.org/10.1007/s10562-020-03291-z
  92. Kumbhakar, P., Gowda, C. C., Mahapatra, P. L., Mukherjee, M., Malviya, K. D., Chaker, M., Chandra, A., Lahiri, B., Ajayan, P., Jariwala, D.: Emerging 2D metal oxides and their applications. Mater. Today. (2021).
  93. Dang et al. (2020) Microwave-assisted synthesis of nano Hf-and Zr-based metal-organic frameworks for enhancement of curcumin adsorption https://doi.org/10.1016/j.micromeso.2020.110064
  94. Bobbitt et al. (2017) Metal–organic frameworks for the removal of toxic industrial chemicals and chemical warfare agents (pp. 3357-3385) https://doi.org/10.1039/C7CS00108H
  95. Hayes, B. L.: Microwave synthesis: chemistry at the speed of light. Cem Corporation. (2002).
  96. Zhu et al. (2022) A new strategy for the development of efficient impedimetric tobramycin aptasensors with metallo-covalent organic frameworks (MCOFs) https://doi.org/10.1016/j.foodchem.2021.130575
  97. Zhao et al. (2019) The synthesis and electrochemical applications of core–shell MOFs and their derivatives (pp. 15519-15540) https://doi.org/10.1039/C9TA03833G
  98. Ajdari et al. (2020) A review on the field patents and recent developments over the application of metal organic frameworks (MOFs) in supercapacitors https://doi.org/10.1016/j.ccr.2020.213441
  99. Stock and Biswas (2012) Synthesis of metal-organic frameworks (MOFs): routes to various MOF topologies, morphologies, and composites (pp. 933-969) https://doi.org/10.1021/cr200304e
  100. Thorne et al. (2020) Mechanochemical synthesis of mixed metal, mixed linker, glass-forming metal–organic frameworks (pp. 2505-2512) https://doi.org/10.1039/D0GC00546K
  101. Song et al. (2020) Ion-exchanged ZIF-67 synthesized by one-step method for enhancement of CO2 adsorption https://doi.org/10.1155/2020/1508574
  102. Li et al. (2018) A Co, N co-doped hierarchically porous carbon hybrid as a highly efficient oxidase mimetic for glutathione detection (pp. 312-319) https://doi.org/10.1016/j.snb.2018.03.015
  103. Liu et al. (2019) Light-responsive metal–organic framework as an oxidase mimic for cellular glutathione detection (pp. 8170-8175) https://doi.org/10.1021/acs.analchem.9b00512
  104. Wang et al. (2019) Nitro-functionalized metal–organic frameworks with catalase mimic properties for glutathione detection (pp. 6041-6047) https://doi.org/10.1039/C9AN00813F
  105. Jangi and Akhond (2020) Synthesis and characterization of a novel metal-organic framework called nanosized electroactive quasi-coral-340 (NEQC-340) and its application for constructing a reusable nanozyme-based sensor for selective and sensitive glutathione quantification https://doi.org/10.1016/j.microc.2020.105328
  106. Wang et al. (2020) UiO-66-NH2 MOF-based ratiometric fluorescent probe for the detection of dopamine and reduced glutathione https://doi.org/10.1016/j.talanta.2020.121352
  107. Dalapati et al. (2017) A cerium-based metal–organic framework having inherent oxidase-like activity applicable for colorimetric sensing of biothiols and aerobic oxidation of thiols (pp. 5915-5925) https://doi.org/10.1039/C7CE01053B
  108. Jin et al. (2020) Cobalt-based metal organic frameworks: a highly active oxidase-mimicking nanozyme for fluorescence “turn-on” assays of biothiol (pp. 659-662) https://doi.org/10.1039/C9CC06840F
  109. Chen et al. (2020) Experimental and theoretical validations of a one-pot sequential sensing of Hg2+ and biothiols by a 3D Cu-based zwitterionic metal-organic framework https://doi.org/10.1016/j.talanta.2019.120596
  110. Huang et al. (2019) Rapid sequential detection of Hg2+ and biothiols by a probe DNA-MOF hybrid sensory system https://doi.org/10.1016/j.jinorgbio.2019.04.004
  111. Zhang et al. (2018) Highly sensitive and selective colorimetric detection of glutathione via enhanced Fenton-like reaction of magnetic metal organic framework (pp. 95-101) https://doi.org/10.1016/j.snb.2018.01.221
  112. Jiang et al. (2019) Metal organic framework MIL-53 (Fe) as an efficient artificial oxidase for colorimetric detection of cellular biothiols (pp. 82-88) https://doi.org/10.1016/j.ab.2019.04.020
  113. Zhu et al. (2019) Intracellular imaging of glutathione with MnO2 Nanosheet@Ru (bpy)32+–UiO-66 nanocomposites (pp. 31693-31699) https://doi.org/10.1021/acsami.9b11025
  114. Hu et al. (2016) Colorimetric sensing of bithiols using photocatalytic UiO-66 (NH2) as H2O2-free peroxidase mimics (pp. 276-282) https://doi.org/10.1016/j.talanta.2016.05.040
  115. Wang et al. (2021) Facile synthesis of CDs@ ZIF-8 nanocomposites as excellent peroxidase mimics for colorimetric detection of H2O2 and glutathione https://doi.org/10.1016/j.snb.2020.129115
  116. Nangare et al. (2021) Structural design of nanosize-metal–organic framework-based sensors for detection of organophosphorus pesticides in food and water samples: current challenges and future prospects https://doi.org/10.1007/s40097-021-00449-y
  117. Strianese et al. (2012) Fluorescence-based biosensors https://doi.org/10.1007/978-1-61779-806-1_9
  118. Huang et al. (2020) Sequential Ag+/biothiol and synchronous Ag+/Hg2+ biosensing with zwitterionic Cu2+-based metal–organic frameworks (pp. 2779-2788) https://doi.org/10.1039/D0AN00002G
  119. Zhao et al. (2020) Colorimetric biosensors for point-of-care virus detections (pp. 237-249)
  120. Liu et al. (2021) Silver nanoparticle-functionalized 3D flower-like copper (II)-porphyrin framework nanocomposites as signal enhancers for fabricating a sensitive glutathione electrochemical sensor https://doi.org/10.1016/j.snb.2021.130047
  121. Ghasempour et al. (2021) Metal–organic frameworks based on multicarboxylate linkers https://doi.org/10.1016/j.ccr.2020.213542
  122. Nguyen et al. (2021) Microwave-assisted solvothermal synthesis of bimetallic metal-organic framework for efficient photodegradation of organic dyes Mater
  123. Lei et al. (2021) Hydrangea-like Ni/NiO/C composites derived from metal-organic frameworks with superior microwave absorption (pp. 69-79) https://doi.org/10.1016/j.carbon.2020.10.093
  124. Lu et al. (2021) Metal–organic frameworks derived functional materials for electrochemical energy storage and conversion: a mini review (pp. 1555-1565) https://doi.org/10.1021/acs.nanolett.0c04898
  125. Abdolalian et al. (2021) Sono-synthesis of basic metal-organic framework for reusable catalysis of organic reactions in the eco-friendly conditions https://doi.org/10.1016/j.jssc.2021.122525
  126. Lee, H. K., Lee, J. H., Moon, H. R.: Mechanochemistry as a reconstruction tool of decomposed metal–organic frameworks. Inorg. Chem. (2021).
  127. Zhao, Y., Zeng, H., Zhu, X.-W., Lu, W., Li, D.: Metal–organic frameworks as photoluminescent biosensing platforms: mechanisms and applications. Chem. Soc. Rev. (2021).
  128. Li et al. (2021) Alkaline phosphatase activity assay with luminescent metal organic frameworks-based chemiluminescent resonance energy transfer platform https://doi.org/10.1016/j.microc.2020.105665
  129. Zhao et al. (2021) The modulation effect of charge transfer on photoluminescence in metal–organic frameworks (pp. 4505-4511) https://doi.org/10.1039/D0NR07834D
  130. Liu et al. (2021) Small molecules, big effects: tuning adsorption and catalytic properties of metal–organic frameworks (pp. 1444-1454) https://doi.org/10.1021/acs.chemmater.0c04675
  131. Feng et al. (2021) Structural design of metal–organic frameworks with tunable colorimetric responses for visual sensing applications https://doi.org/10.1016/j.ccr.2021.214102
  132. Guo et al. (2021) In-situ synthesis of carbon dots-embedded europium metal-organic frameworks for ratiometric fluorescence detection of Hg2+ in aqueous environment (pp. 13-20) https://doi.org/10.1016/j.aca.2020.10.028
  133. Ryu et al. (2021) Recent advances in process engineering and upcoming applications of metal–organic frameworks https://doi.org/10.1016/j.ccr.2020.213544
  134. Teo, W. L., Zhou, W., Qian, C., Zhao, Y.: Industrializing metal–organic frameworks: Scalable synthetic means and their transformation into functional materials. Mater. Today. (2021).
  135. Zhang et al. (2021) Molecularly soldered covalent organic frameworks for ultrafast precision sieving https://doi.org/10.1126/sciadv.abe8706
  136. Wang et al. (2021) Ru (bpy)32+ encapsulated cyclodextrin based metal organic framework with improved biocompatibility for sensitive electrochemiluminescence detection of CYFRA21–1 in cell https://doi.org/10.1016/j.bios.2021.113371
  137. Ji et al. (2021) Enzyme-functionalized magnetic framework composite fabricated by one-pot encapsulation of lipase and Fe3O4 nanoparticle into metal–organic framework https://doi.org/10.1016/j.bej.2021.107962
  138. Li et al. (2021) Molybdenum disulfide supported on metal–organic frameworks as an ultrasensitive layer for the electrochemical detection of the ovarian cancer biomarker CA125 (pp. 5494-5502) https://doi.org/10.1021/acsabm.1c00324