Tsenkova Roumiana, Munćan Jelena, Pollner Bernhard, Kovacs Zoltan
Biomeasurement Technology Laboratory, Graduate School of Agricultural Science, Kobe University, Kobe, Japan.
Nanolab, Biomedical Engineering Department, Faculty of Mechanical Engineering, University of Belgrade, Belgrade, Serbia.
Front Chem. 2018 Aug 28;6:363. doi: 10.3389/fchem.2018.00363. eCollection 2018.
Aquaphotomics is a novel scientific discipline involving the study of water and aqueous systems. Using light-water interaction, it aims to extract information about the structure of water, composed of many different water molecular conformations using their absorbance bands. In aquaphotomics analysis, specific water structures (presented as water absorbance patterns) are related to their resulting functions in the aqueous systems studied, thereby building an aquaphotome-a database of water absorbance bands and patterns correlating specific water structures to their specific functions. Light-water interaction spectroscopic methods produce complex multidimensional spectral data, which require data processing and analysis to extract hidden information about the structure of water presented by its absorbance bands. The process of extracting information from water spectra in aquaphotomics requires a field-specific approach. It starts with an appropriate experimental design and execution to ensure high-quality spectral signals, followed by a multitude of spectral analysis, preprocessing and chemometrics methods to remove unwanted influences and extract water absorbance spectral pattern related to the perturbation of interest through the identification of activated water absorbance bands found among the common, consistently repeating and highly influential variables in all analytical models. The objective of this paper is to introduce the field of aquaphotomics and describe aquaphotomics multivariate analysis methodology developed during the last decade. Through a worked-out example of analysis of potassium chloride solutions supported by similar approaches from the existing aquaphotomics literature, the provided instruction should give enough information about aquaphotomics analysis i.e. to design and perform the experiment and data analysis as well as to represent water absorbance spectral pattern using various forms of aquagrams-specifically designed aquaphotomics graphs. The explained methodology is derived from analysis of near infrared spectral data of aqueous systems and will offer a useful and new tool for extracting data from informationally rich water spectra in any region. It is the hope of the authors that with this new tool at the disposal of scientists and chemometricians, pharmaceutical and biomedical spectroscopy will substantially progress beyond its state-of-the-art applications.
水光谱组学是一门涉及水和水体系研究的新兴科学学科。利用光与水的相互作用,它旨在通过许多不同水分子构象的吸收带提取有关水结构的信息。在水光谱组学分析中,特定的水结构(以水吸收模式呈现)与它们在所研究的水体系中的最终功能相关,从而构建一个水光谱组——一个水吸收带和模式的数据库,将特定的水结构与其特定功能相关联。光与水相互作用光谱方法产生复杂的多维光谱数据,这需要数据处理和分析来提取由其吸收带呈现的水结构的隐藏信息。在水光谱组学中从水光谱提取信息的过程需要特定领域的方法。它始于适当的实验设计和执行以确保高质量的光谱信号,接着是多种光谱分析、预处理和化学计量学方法,以消除不需要的影响,并通过识别在所有分析模型中常见、持续重复且具有高度影响力的变量中发现的活化水吸收带,提取与感兴趣的扰动相关的水吸收光谱模式。本文的目的是介绍水光谱组学领域,并描述过去十年中开发的水光谱组学多变量分析方法。通过一个由现有水光谱组学文献中类似方法支持的氯化钾溶液分析的实例,所提供的说明应能提供有关水光谱组学分析的足够信息,即设计和进行实验及数据分析,以及使用各种形式的水谱图(专门设计的水光谱组学图表)来表示水吸收光谱模式。所解释的方法源自对水体系近红外光谱数据的分析,并将为从任何区域信息丰富的水光谱中提取数据提供一个有用的新工具。作者希望,有了这个新工具供科学家和化学计量学家使用,药物和生物医学光谱学将在其现有应用水平上取得实质性进展。