Literature DB >> 31149804

The Nano-Bio Interactions of Nanomedicines: Understanding the Biochemical Driving Forces and Redox Reactions.

Yaling Wang1, Rong Cai1, Chunying Chen1,2.   

Abstract

Engineered nanomaterials (ENMs) have been developed for imaging, drug delivery, diagnosis, and clinical therapeutic purposes because of their outstanding physicochemical characteristics. However, the function and ultimate efficiency of nanomedicines remain unsatisfactory for clinical application, mainly because of our insufficient understanding of nanomaterial/nanomedicine-biology (nano-bio) interactions. The nonequilibrated, complex, and heterogeneous nature of the biological milieu inevitably influences the dynamic bioidentity of nanoformulations at each site (i.e., the interfaces at different biological fluids (biofluids), environments, or biological structures) of nano-bio interactions. The continuous interplay between a nanomedicine and the biological molecules and structures in the biological environments can, for example, affect cellular uptake or completely alter the designed function of the nanomedicine. Accordingly, the weak and strong driving forces at the nano-bio interface may elicit structural reconformation, decrease bioactivity, and induce dysfunction of the nanomaterial and/or redox reactions with biological molecules, all of which may elicit unintended and unexpected biological outcomes. In contrast, these driving forces also can be manipulated to mitigate the toxicity of ENMs or improve the targeting abilities of ENMs. Therefore, a comprehensive understanding of the underlying mechanisms of nano-bio interactions is paramount for the intelligent design of safe and effective nanomedicines. In this Account, we summarize our recent progress in probing the nano-bio interaction of nanomedicines, focusing on the driving force and redox reaction at the nano-bio interface, which have been recognized as the main factors that regulate the functions and toxicities of nanomedicines. First, we provide insight into the driving force that shapes the boundary of different nano-bio interfaces (including proteins, cell membranes, and biofluids), for instance, hydrophobic, electrostatic, hydrogen bond, molecular recognition, metal-coordinate, and stereoselective interactions that influence the different nano-bio interactions at each contact site in the biological environment. The physicochemical properties of both the nanoparticle and the biomolecule are varied, causing structure recombination, dysfunction, and bioactivity loss of proteins; correspondingly, the surface properties, biological functions, intracellular uptake pathways, and fate of ENMs are also influenced. Second, with the help of these driving forces, four kinds of redox interactions with reactive oxygen species (ROS), antioxidant, sorbate, and the prosthetic group of oxidoreductases are utilized to regulate the intracellular redox equilibrium and construct synergetic nanomedicines for combating bacteria and cancers. Three kinds of electron-transfer mechanisms are involved in designing nanomedicines, including direct electron injection, sorbate-mediated, and irradiation-induced processes. Finally, we discuss the factors that influence the nano-bio interactions and propose corresponding strategies to manipulate the nano-bio interactions for advancing nanomedicine design. We expect our efforts in understanding the nano-bio interaction and the future development of this field will bring nanomedicine to human use more quickly.

Entities:  

Year:  2019        PMID: 31149804     DOI: 10.1021/acs.accounts.9b00126

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  32 in total

1.  X-ray-Based Techniques to Study the Nano-Bio Interface.

Authors:  Carlos Sanchez-Cano; Ramon A Alvarez-Puebla; John M Abendroth; Tobias Beck; Robert Blick; Yuan Cao; Frank Caruso; Indranath Chakraborty; Henry N Chapman; Chunying Chen; Bruce E Cohen; Andre L C Conceição; David P Cormode; Daxiang Cui; Kenneth A Dawson; Gerald Falkenberg; Chunhai Fan; Neus Feliu; Mingyuan Gao; Elisabetta Gargioni; Claus-C Glüer; Florian Grüner; Moustapha Hassan; Yong Hu; Yalan Huang; Samuel Huber; Nils Huse; Yanan Kang; Ali Khademhosseini; Thomas F Keller; Christian Körnig; Nicholas A Kotov; Dorota Koziej; Xing-Jie Liang; Beibei Liu; Sijin Liu; Yang Liu; Ziyao Liu; Luis M Liz-Marzán; Xiaowei Ma; Andres Machicote; Wolfgang Maison; Adrian P Mancuso; Saad Megahed; Bert Nickel; Ferdinand Otto; Cristina Palencia; Sakura Pascarelli; Arwen Pearson; Oula Peñate-Medina; Bing Qi; Joachim Rädler; Joseph J Richardson; Axel Rosenhahn; Kai Rothkamm; Michael Rübhausen; Milan K Sanyal; Raymond E Schaak; Heinz-Peter Schlemmer; Marius Schmidt; Oliver Schmutzler; Theo Schotten; Florian Schulz; A K Sood; Kathryn M Spiers; Theresa Staufer; Dominik M Stemer; Andreas Stierle; Xing Sun; Gohar Tsakanova; Paul S Weiss; Horst Weller; Fabian Westermeier; Ming Xu; Huijie Yan; Yuan Zeng; Ying Zhao; Yuliang Zhao; Dingcheng Zhu; Ying Zhu; Wolfgang J Parak
Journal:  ACS Nano       Date:  2021-03-02       Impact factor: 15.881

Review 2.  Safety Considerations of Cancer Nanomedicine-A Key Step toward Translation.

Authors:  Xiangsheng Liu; Ivanna Tang; Zev A Wainberg; Huan Meng
Journal:  Small       Date:  2020-05-14       Impact factor: 13.281

3.  Dynamic intracellular exchange of nanomaterials' protein corona perturbs proteostasis and remodels cell metabolism.

Authors:  Rong Cai; Jiayu Ren; Mengyu Guo; Taotao Wei; Ying Liu; Chunyu Xie; Peng Zhang; Zhiling Guo; Andrew J Chetwynd; Pu Chun Ke; Iseult Lynch; Chunying Chen
Journal:  Proc Natl Acad Sci U S A       Date:  2022-06-02       Impact factor: 12.779

Review 4.  Nanomaterials in Animal Husbandry: Research and Prospects.

Authors:  Kun Wang; Xubin Lu; Yi Lu; Jiacheng Wang; Qinyue Lu; Xiang Cao; Yi Yang; Zhangping Yang
Journal:  Front Genet       Date:  2022-06-21       Impact factor: 4.772

Review 5.  Understanding Nanomaterial-Liver Interactions to Facilitate the Development of Safer Nanoapplications.

Authors:  Jiulong Li; Chunying Chen; Tian Xia
Journal:  Adv Mater       Date:  2022-02-03       Impact factor: 32.086

Review 6.  The Role of Branch Cell Symmetry and Other Critical Nanoscale Design Parameters in the Determination of Dendrimer Encapsulation Properties.

Authors:  Donald A Tomalia; Linda S Nixon; David M Hedstrand
Journal:  Biomolecules       Date:  2020-04-21

Review 7.  Engineering of chiral nanomaterials for biomimetic catalysis.

Authors:  Hongyu Zhang; Si Li; Aihua Qu; Changlong Hao; Maozhong Sun; Liguang Xu; Chuanlai Xu; Hua Kuang
Journal:  Chem Sci       Date:  2020-10-21       Impact factor: 9.825

8.  Water-Soluble Noble Metal Nanoparticle Catalysts Capped with Small Organic Molecules for Organic Transformations in Water.

Authors:  Al-Mahmnur Alam; Young-Seok Shon
Journal:  ACS Appl Nano Mater       Date:  2021-04-13

9.  Biostimulation and toxicity: The magnitude of the impact of nanomaterials in microorganisms and plants.

Authors:  Antonio Juárez-Maldonado; Gonzalo Tortella; Olga Rubilar; Paola Fincheira; Adalberto Benavides-Mendoza
Journal:  J Adv Res       Date:  2021-01-05       Impact factor: 10.479

10.  Machine learning predicts the functional composition of the protein corona and the cellular recognition of nanoparticles.

Authors:  Zhan Ban; Peng Yuan; Fubo Yu; Ting Peng; Qixing Zhou; Xiangang Hu
Journal:  Proc Natl Acad Sci U S A       Date:  2020-04-24       Impact factor: 11.205

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