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Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Nanoplastics Sign in to save

Polystyrene nanoplastics demonstrate high structural stability in vivo: A comparative study with silica nanoparticles via SERS tag labeling

Chemosphere 2022 28 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Xizhen Zhao, Yunxia Ji, Xizhen Zhao, Yunxia Ji, Yunxia Ji, Yunxia Ji, Ying Chen, Yunqing Wang, Yunqing Wang, Yunqing Wang, Yunqing Wang, Yunqing Wang, Yunqing Wang, Yunqing Wang, Yunqing Wang, Yunqing Wang, Rongchao Mei, Xizhen Zhao, Yunqing Wang, Xizhen Zhao, Rongchao Mei, Yunxia Ji, Yunxia Ji, Xizhen Zhao, Lingxin Chen Xiaoyan Wang, Xiaoyan Wang, Yunqing Wang, Rongchao Mei, Rongchao Mei, Xizhen Zhao, Xizhen Zhao, Yunxia Ji, Rongchao Mei, Rongchao Mei, Xizhen Zhao, Ying Chen, Xizhen Zhao, Rongchao Mei, Yunxia Ji, Lingxin Chen Xizhen Zhao, Lingxin Chen Yunqing Wang, Rongchao Mei, Lingxin Chen Yunqing Wang, Xiaoyan Wang, Zhiyang Zhang, Lingxin Chen Lingxin Chen Lingxin Chen Xizhen Zhao, Yunqing Wang, Yunqing Wang, Yunqing Wang, Lingxin Chen Lingxin Chen Yunxia Ji, Xizhen Zhao, Lingxin Chen Lingxin Chen Zhiyang Zhang, Lingxin Chen Lingxin Chen Xiaoyan Wang, Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Xiaoyan Wang, Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen Lingxin Chen

Summary

Researchers developed a SERS tag labeling technique to track polystyrene nanoplastics in vivo, finding that nanoplastics demonstrate remarkably high structural stability in organisms compared to silica nanoparticles, which degraded more readily.

Polymers
Models
Study Type In vivo

Nanoplastics are regarded as inert particulate pollutants pose potential threat to organisms. It has been verified that they can penetrate biological barriers and accumulate in organisms; however, there is still a knowledge gap on the in vivo stability and degradation behaviors due to the lack of ideal analytical methods. Herein, a surface-enhanced Raman scattering (SERS) tag labeling technique was developed to study the in vivo behaviors of polystyrene (PS) nanoplastics by comparison with silica (SiO) nanoparticles (NPs). The labeled NPs were composed of gold NP core, attached Raman reporters as well as PS and silica shell, respectively, demonstrating strong SERS signals which were responsive to the compactness of the shells. The labeled NPs enabled the probing of in vivo structural stability of PS and silica in the liver, spleen and lung of mice after intravenous injection via the time-dependent evolution of SERS signal intensity and gold element content in the organs. The results indicated that both PS and silica model NPs retained in these organs without apparent excretion within 28 d. However, the structural stabilities of PS and silica differed dramatically as reflected by the SERS signal and tissue slice characterization. The silica shell completely degraded whereas the PS shell was still compact. Our results verified the long-term accumulation and in vivo inert property of nanoplastics, hinting that they were distinct from natural NPs and probably induce higher health risks from the aspect of the non-degradation property.

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