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Focus on using nanopore technology for societal health, environmental, and energy challenges.专注于将纳米孔技术应用于社会健康、环境和能源挑战。
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The 2023 Latin America report of the Countdown on health and climate change: the imperative for health-centred climate-resilient development.《2023年健康与气候变化倒计时拉丁美洲报告:以健康为中心的气候适应型发展的必要性》
Lancet Reg Health Am. 2024 Apr 23;33:100746. doi: 10.1016/j.lana.2024.100746. eCollection 2024 May.
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Trends in onroad transportation energy and emissions.道路运输能源与排放趋势。
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Technological options for the management of biosolids.生物固体管理的技术选择。
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Developing Multipollutant Exposure Indicators of Traffic Pollution: The Dorm Room Inhalation to Vehicle Emissions (DRIVE) Study.开发交通污染的多污染物暴露指标:宿舍吸入车辆排放(DRIVE)研究。
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Nanopore sensing of protein and peptide conformation for point-of-care applications.用于即时检测应用的蛋白质和肽构象的纳米孔传感
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Vectorial Discrimination of Small Molecules with a Macrocycle Adaptor-Protein Nanopore System and Nanocavity-Dependent, pH Gradient-Controlled Analyte Kinetics.利用大环适配体-蛋白质纳米孔系统和纳米腔依赖性、pH梯度控制的分析物动力学对小分子进行矢量区分。
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Bimodal Ionic Conduction through Polymer Films due to Nano Confinement.纳米限域导致聚合物薄膜中的双峰离子传导。
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本文引用的文献

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Rescuing low frequency variants within intra-host viral populations directly from Oxford Nanopore sequencing data.从牛津纳米孔测序数据中直接拯救宿主内病毒群体中的低频变异体。
Nat Commun. 2022 Mar 14;13(1):1321. doi: 10.1038/s41467-022-28852-1.
2
Controlled movement of ssDNA conjugated peptide through porin A (MspA) nanopore by a helicase motor for peptide sequencing application.通过解旋酶马达控制与单链DNA结合的肽穿过孔蛋白A(MspA)纳米孔用于肽测序应用。
Chem Sci. 2021 Nov 12;12(47):15750-15756. doi: 10.1039/d1sc04342k. eCollection 2021 Dec 8.
3
Accurate detection of circulating tumor DNA using nanopore consensus sequencing.使用纳米孔一致性测序准确检测循环肿瘤DNA。
NPJ Genom Med. 2021 Dec 9;6(1):106. doi: 10.1038/s41525-021-00272-y.
4
Conical nanopores highlight the pro-aggregating effects of pyrimethanil fungicide on Aβ(1-42) peptides and dimeric splitting phenomena.锥形纳米孔突出了苯并咪唑类杀菌剂嘧菌酯对 Aβ(1-42)肽的促聚集作用及二聚体分裂现象。
Chemosphere. 2022 Mar;291(Pt 1):132733. doi: 10.1016/j.chemosphere.2021.132733. Epub 2021 Nov 3.
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Rapid detection of novel coronavirus SARS-CoV-2 by RT-LAMP coupled solid-state nanopores.通过 RT-LAMP 结合固态纳米孔快速检测新型冠状病毒 SARS-CoV-2。
Biosens Bioelectron. 2022 Feb 1;197:113759. doi: 10.1016/j.bios.2021.113759. Epub 2021 Nov 2.
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Multiple rereads of single proteins at single-amino acid resolution using nanopores.使用纳米孔技术对单个蛋白质进行多次单氨基酸分辨率重读。
Science. 2021 Dec 17;374(6574):1509-1513. doi: 10.1126/science.abl4381. Epub 2021 Nov 4.
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Aquatic ecotoxicity of manufactured silica nanoparticles: A systematic review and meta-analysis.人造二氧化硅纳米颗粒的水生生态毒性:系统评价与荟萃分析。
Sci Total Environ. 2022 Feb 1;806(Pt 4):150893. doi: 10.1016/j.scitotenv.2021.150893. Epub 2021 Oct 12.
8
Programmable nano-reactors for stochastic sensing.可编程纳米反应器用于随机传感。
Nat Commun. 2021 Oct 4;12(1):5811. doi: 10.1038/s41467-021-26054-9.
9
Protein identification by nanopore peptide profiling.通过纳米孔肽谱鉴定蛋白质。
Nat Commun. 2021 Oct 4;12(1):5795. doi: 10.1038/s41467-021-26046-9.
10
Detection of Amyloid-β Fibrils Using Track-Etched Nanopores: Effect of Geometry and Crowding.使用刻蚀纳米孔检测淀粉样β纤维:几何形状和拥挤的影响。
ACS Sens. 2021 Oct 22;6(10):3733-3743. doi: 10.1021/acssensors.1c01523. Epub 2021 Sep 23.

专注于将纳米孔技术应用于社会健康、环境和能源挑战。

Focus on using nanopore technology for societal health, environmental, and energy challenges.

作者信息

Tanimoto Izadora Mayumi Fujinami, Cressiot Benjamin, Greive Sandra J, Le Pioufle Bruno, Bacri Laurent, Pelta Juan

机构信息

LAMBE, CNRS, Univ Evry, Université Paris-Saclay, 91025 Evry-Courcouronnes, France.

LuMIn, CNRS, Institut d'Alembert, ENS Paris-Saclay, Université Paris-Saclay, 91190 Gif-sur-Yvette, France.

出版信息

Nano Res. 2022;15(11):9906-9920. doi: 10.1007/s12274-022-4379-2. Epub 2022 May 20.

DOI:10.1007/s12274-022-4379-2
PMID:35610982
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9120803/
Abstract

With an increasing global population that is rapidly ageing, our society faces challenges that impact health, environment, and energy demand. With this ageing comes an accumulation of cellular changes that lead to the development of diseases and susceptibility to infections. This impacts not only the health system, but also the global economy. As the population increases, so does the demand for energy and the emission of pollutants, leading to a progressive degradation of our environment. This in turn impacts health through reduced access to arable land, clean water, and breathable air. New monitoring approaches to assist in environmental control and minimize the impact on health are urgently needed, leading to the development of new sensor technologies that are highly sensitive, rapid, and low-cost. Nanopore sensing is a new technology that helps to meet this purpose, with the potential to provide rapid point-of-care medical diagnosis, real-time on-site pollutant monitoring systems to manage environmental health, as well as integrated sensors to increase the efficiency and storage capacity of renewable energy sources. In this review we discuss how the powerful approach of nanopore based single-molecule, or particle, electrical promises to overcome existing and emerging societal challenges, providing new opportunities and tools for personalized medicine, localized environmental monitoring, and improved energy production and storage systems.

摘要

随着全球人口的不断增加且迅速老龄化,我们的社会面临着影响健康、环境和能源需求的挑战。随着老龄化的加剧,细胞变化不断积累,导致疾病的发展和对感染的易感性。这不仅影响卫生系统,也影响全球经济。随着人口增加,能源需求和污染物排放也随之增加,导致我们的环境逐渐恶化。这反过来又通过减少可耕地、清洁水和可呼吸空气的获取来影响健康。迫切需要新的监测方法来协助环境控制并尽量减少对健康的影响,从而推动了高灵敏度、快速且低成本的新型传感器技术的发展。纳米孔传感是一种有助于实现这一目标的新技术,它有潜力提供快速的即时医疗诊断、用于管理环境卫生的实时现场污染物监测系统,以及提高可再生能源效率和存储容量的集成传感器。在本综述中,我们将讨论基于纳米孔的单分子或颗粒电学这一强大方法如何有望克服现有和新出现的社会挑战,为个性化医疗、局部环境监测以及改进的能源生产和存储系统提供新的机遇和工具。