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| 1 | Electrochemical detection of carbamate pesticides in fruit and vegetables with a biosensor based on acetylcholinesterase immobilised on a composite of polyaniline-carbon nanotubes显示文摘 | CESARINO I MORAES F C LANZA M R V | | 0,,03: | 1 |
| 2 | Thiol - Functionalized silica thin modified electrode in determination of mercury ions in natural water显示文摘 | Ivana Cesarino Edict Tadeu Gomes Cavalheiro | 2008 | Electroanalysis2008,20,: | 1 |
| 3 | Enantioselective analysis of disopyramide and mono-N-dealkyldisopyramide in plasma and urine by high-performance liquid chromatography on an amylase-derived chiral stationary phase显示文摘 | Bortocan R Lanchote VL Cesarino E J | 2000 | J Chromat B2000,744,2: | 1 |
| 4 | Electrochemical detection of carbamate pesticides in fruit and vegetables with a biosensor based on acetylcholinesterase immobilised on a composite of polyaniline-carbon nanotubes显示文摘 | Ivana Cesarino Fernando C Moraes Marcos R V Lanza | 2012 | Food Chemistry2012,135,3: | 1 |
| 5 | Simultaneous determination of cadmium,lead,copper and mercury ions using organofunctionalized SBA-15 nanostructured silica modified graphite polyurethane Composite Electrode显示文摘 | Cesarino I Cavalheiro E T G Brettb C M A | 2010 | Electroanalysis2010,,22: | 1 |
| 6 | An overview of lignin metabolism and its effect on biomass recalcitrance显示文摘 | Cesarino I Araujo P Domingues A P | 2012 | Brazilian Journal of Botany2012,35,4: | 1 |
| 7 | Electrochemi- cal detection of carbamate pesticides in fruit and vegeta- bles with a biosensor based on acetylcholinesterase immo- bilised on a composite of polyaniline-carbon nanotubes 显示文摘 | Cesarino I Moraes F C Lanza M R V | 2012 | Food Chem2012,135,3: | 1 |
| 8 | The Embryo Research Debate in Brazil:From the National Congress to the Federal Su- preme Court 显示文摘 | Leticia Cesarino Naara Luna | 2010 | Social Studies of Science2010,41,2: | 1 |
| 9 | Dietary fiber in plant cell walls-the healthy carbohydrates显示文摘Dietary fiber(DF)is one of the major classes of nutrients for humans.It is widely distributed in the edible parts of natural plants,with the cell wall being the main DF-containing structure.DF content varies significantly in different plant species and organs,and the processing procedure can have a dramatic effect on the DF composition of plant-based foods.Given the considerable nutritional value of DF,a deeper understanding of DF in food plants,including its composition and biosynthesis,is fundamental to the establishment of a daily intake reference of DF and is also critical to molecular breeding programs for modifying DF content.In the past decades,plant cell wall biology has seen dramatic progress,and such knowledge is of great potential to be translated into DF-related food science research and may provide future research directions for improving the health benefits of food crops.In this review,to spark interdisciplinary discussions between food science researchers and plant cell wall biologists,we focus on a specific category of DF--cell wall carbohydrates.We first summarize the content and composition of carbohydrate DF in various plant-based foods,and then discuss the structure and biosynthesis mechanism of each carbohydrate DF category,in particular the respective biosynthetic enzymes.Health impacts of DF are highlighted,and finally,future directions of DF research are also briefly outlined. | 安轶 陆伟泰 李文泽 潘浪浪 卢孟柱 Igor Cesarino 李争 曾为 | 2022 | Food Quality and Safety2022,6,2: | 0 |
| 10 | Coffee cell walls-composition,influence on cup quality and opportunities for coffee improvements显示文摘The coffee beverage is the second most consumed drink worldwide after water.In coffee beans,cell wall storage polysaccharides(CWSPs)represent around 50 per cent of the seed dry mass,mainly consisting of galactomannans and arabinogalactans.These highly abundant structural components largely influence the organoleptic properties of the coffee beverage,mainly due to the complex changes they undergo during the roasting process.From a nutritional point of view,coffee CWSPs are soluble dietary fibers shown to provide numerous health benefits in reducing the risk of human diseases.Due to their influence on coffee quality and their health-promoting benefits,CWSPs have been attracting significant research attention.The importance of cell walls to the coffee industry is not restricted to beans used for beverage production,as several coffee by-products also present high concentrations of cell wall components.These by-products include cherry husks,cherry pulps,parchment skin,silver skin,and spent coffee grounds,which are currently used or have the potential to be utilized either as food ingredients or additives,or for the generation of downstream products such as enzymes,pharmaceuticals,and bioethanol.In addition to their functions during plant development,cell walls also play a role in the plant's resistance to stresses.Here,we review several aspects of coffee cell walls,including chemical composition,biosynthesis,their function in coffee’s responses to stresses,and their influence on coffee quality.We also propose some potential cell wall-related biotechnological strategies envisaged for coffee improvements. | 李争 张春堂 张緩 曾为 Igor Cesarino | 2021 | Food Quality and Safety2021,5,2: | 0 |
| 11 | Finding my way: The role of dirigent proteins in lignin assembly显示文摘Lignin emerged around 450 million years ago in early tracheophytes and played a pivotal role in the colonization of terrestrial ecosystems by plants.This aromatic biopolymer provides mechanical strength to supportive tissues and hydrophobicity to water-transporting vasculature and acts as a physical barrier against herbivores and pathogens(Renault et al.,2019).The deposition of lignin in cell walls for proper cellular functionalization involves several molecular steps,including the tight regulation of tissue-or cell-type-specific expression of lignin biosynthetic genes,the biosynthesis of distinct lignin monomers and their transportation to the apoplast,and the polymerization of monomer radicals to produce tissue-or cell-type-dependent polymers with distinct physico-chemical properties. | Dyoni M.Oliveira Igor Cesarino | 2024 | Molecular Plant2024,17,2: | 0 |