Literature DB >> 32057231

Cell-Penetrating Nanoparticles Activate the Inflammasome to Enhance Antibody Production by Targeting Microtubule-Associated Protein 1-Light Chain 3 for Degradation.

Motao Zhu1,2,3, Libo Du4, Ruifang Zhao2,3, Helen Y Wang1,3, Yuliang Zhao2, Guangjun Nie2, Rong-Fu Wang1,3,5.   

Abstract

Engineered nanoparticles could trigger inflammatory responses and potentiate a desired innate immune response for efficient immunotherapy. Here we report size-dependent activation of innate immune signaling pathways by gold (Au) nanoparticles. The ultrasmall-size (<10 nm) Au nanoparticles preferentially activate the NLRP3 inflammasome for Caspase-1 maturation and interleukin-1β production, while the larger-size Au nanoparticles (>10 nm) trigger the NF-κB signaling pathway. Ultrasmall (4.5 nm) Au nanoparticles (Au4.5) activate the NLRP3 inflammasome through directly penetrating into cell cytoplasm to promote robust ROS production and target autophagy protein-LC3 (microtubule-associated protein 1-light chain 3) for proteasomal degradation in an endocytic/phagocytic-independent manner. LC3-dependent autophagy is required for inhibiting NLRP3 inflammasome activation and plays a critical role in the negative control of inflammasome activation. Au4.5 nanoparticles promote the degradation of LC3, thus relieving the LC3-mediated inhibition of the NLRP3 inflammasome. Finally, we show that Au4.5 nanoparticles could function as vaccine adjuvants to markedly enhance ovalbumin (OVA)-specific antibody production in an NLRP3-dependent pattern. Our findings have provided molecular insights into size-dependent innate immune signaling activation by cell-penetrating nanoparticles and identified LC3 as a potential regulatory target for efficient immunotherapy.

Entities:  

Keywords:  NLRP3 inflammasome; adjuvant activity; antibody production; autophagy; cell-penetrating ultrasmall-sized gold nanoparticles; microtubule-associated protein 1-light chain 3 (LC3)

Mesh:

Substances:

Year:  2020        PMID: 32057231      PMCID: PMC7457719          DOI: 10.1021/acsnano.0c00962

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  59 in total

1.  NANOSAFETY. How safe are nanomaterials?

Authors:  Eugenia Valsami-Jones; Iseult Lynch
Journal:  Science       Date:  2015-10-23       Impact factor: 47.728

Review 2.  Toxic potential of materials at the nanolevel.

Authors:  Andre Nel; Tian Xia; Lutz Mädler; Ning Li
Journal:  Science       Date:  2006-02-03       Impact factor: 47.728

Review 3.  Materials engineering for immunomodulation.

Authors:  Jeffrey A Hubbell; Susan N Thomas; Melody A Swartz
Journal:  Nature       Date:  2009-11-26       Impact factor: 49.962

Review 4.  Immunoengineering: how nanotechnology can enhance cancer immunotherapy.

Authors:  Michael S Goldberg
Journal:  Cell       Date:  2015-04-09       Impact factor: 41.582

5.  Metal nanoparticles in the presence of lipopolysaccharides trigger the onset of metal allergy in mice.

Authors:  Toshiro Hirai; Yasuo Yoshioka; Natsumi Izumi; Ko-Ichi Ichihashi; Takayuki Handa; Nobuo Nishijima; Eiichiro Uemura; Ko-Ichi Sagami; Hideki Takahashi; Manami Yamaguchi; Kazuya Nagano; Yohei Mukai; Haruhiko Kamada; Shin-Ichi Tsunoda; Ken J Ishii; Kazuma Higashisaka; Yasuo Tsutsumi
Journal:  Nat Nanotechnol       Date:  2016-05-30       Impact factor: 39.213

Review 6.  Exploiting intrinsic nanoparticle toxicity: the pros and cons of nanoparticle-induced autophagy in biomedical research.

Authors:  Karen Peynshaert; Bella B Manshian; Freya Joris; Kevin Braeckmans; Stefaan C De Smedt; Jo Demeester; Stefaan J Soenen
Journal:  Chem Rev       Date:  2014-06-13       Impact factor: 60.622

Review 7.  Physicochemical properties determine nanomaterial cellular uptake, transport, and fate.

Authors:  Motao Zhu; Guangjun Nie; Huan Meng; Tian Xia; Andre Nel; Yuliang Zhao
Journal:  Acc Chem Res       Date:  2012-08-14       Impact factor: 22.384

8.  Induction of ROS, mitochondrial damage and autophagy in lung epithelial cancer cells by iron oxide nanoparticles.

Authors:  Mohd Imran Khan; Akbar Mohammad; Govil Patil; S A H Naqvi; L K S Chauhan; Iqbal Ahmad
Journal:  Biomaterials       Date:  2011-11-17       Impact factor: 12.479

9.  Direct observation of a single nanoparticle-ubiquitin corona formation.

Authors:  Feng Ding; Slaven Radic; Ran Chen; Pengyu Chen; Nicholas K Geitner; Jared M Brown; Pu Chun Ke
Journal:  Nanoscale       Date:  2013-08-07       Impact factor: 7.790

Review 10.  Relationship between physical and chemical properties of aluminum-containing adjuvants and immunopotentiation.

Authors:  Stanley L Hem; Harm Hogenesch
Journal:  Expert Rev Vaccines       Date:  2007-10       Impact factor: 5.217

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  11 in total

Review 1.  Leveraging self-assembled nanobiomaterials for improved cancer immunotherapy.

Authors:  Michael P Vincent; Justin O Navidzadeh; Sharan Bobbala; Evan A Scott
Journal:  Cancer Cell       Date:  2022-02-10       Impact factor: 31.743

Review 2.  Mechanisms of immune response to inorganic nanoparticles and their degradation products.

Authors:  Raziye Mohammapdour; Hamidreza Ghandehari
Journal:  Adv Drug Deliv Rev       Date:  2021-11-02       Impact factor: 15.470

Review 3.  Systematic and mechanistic analysis of AuNP-induced nanotoxicity for risk assessment of nanomedicine.

Authors:  Euiyeon Lee; Minhyeong Lee; San Kwon; Jongpil Kim; Youngeun Kwon
Journal:  Nano Converg       Date:  2022-06-09

4.  Altering Antigen Charge to Control Self-Assembly and Processing of Immune Signals During Cancer Vaccination.

Authors:  Shannon J Tsai; Allie Amerman; Christopher M Jewell
Journal:  Front Immunol       Date:  2021-01-06       Impact factor: 7.561

Review 5.  Enhancing Cancer Immunotherapy Treatment Goals by Using Nanoparticle Delivery System.

Authors:  Tobias Achu Muluh; Zhuo Chen; Yi Li; Kang Xiong; Jing Jin; ShaoZhi Fu; JingBo Wu
Journal:  Int J Nanomedicine       Date:  2021-03-25

Review 6.  NLRP3 inflammasome-mediated cytokine production and pyroptosis cell death in breast cancer.

Authors:  Sara Socorro Faria; Susan Costantini; Vladmir Cláudio Cordeiro de Lima; Victor Pianna de Andrade; Mickaël Rialland; Rebe Cedric; Alfredo Budillon; Kelly Grace Magalhães
Journal:  J Biomed Sci       Date:  2021-04-12       Impact factor: 8.410

7.  Investigation of Cytotoxicity, Oxidative Stress, and Inflammatory Responses of Tantalum Nanoparticles in THP-1-Derived Macrophages.

Authors:  Li Zhang; El-Mustapha Haddouti; Hannes Beckert; Ralf Biehl; Shyam Pariyar; Julian M Rüwald; Xian Li; Max Jaenisch; Christof Burger; Dieter C Wirtz; Koroush Kabir; Frank A Schildberg
Journal:  Mediators Inflamm       Date:  2020-12-03       Impact factor: 4.711

Review 8.  Nanomaterial-based delivery vehicles for therapeutic cancer vaccine development.

Authors:  Jie Liang; Xiao Zhao
Journal:  Cancer Biol Med       Date:  2021-05-12       Impact factor: 4.248

9.  Ultrasmall iron oxide nanoparticles cause significant toxicity by specifically inducing acute oxidative stress to multiple organs.

Authors:  Lin Wu; Wen Wen; Xiaofeng Wang; Danhua Huang; Jin Cao; Xueyong Qi; Song Shen
Journal:  Part Fibre Toxicol       Date:  2022-03-29       Impact factor: 9.400

10.  Pan-cancer analysis of NLRP3 inflammasome with potential implications in prognosis and immunotherapy in human cancer.

Authors:  Mingyi Ju; Jia Bi; Qian Wei; Longyang Jiang; Qiutong Guan; Ming Zhang; Xinyue Song; Ting Chen; Jingyi Fan; Xiaojuan Li; Minjie Wei; Lin Zhao
Journal:  Brief Bioinform       Date:  2021-07-20       Impact factor: 11.622

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