过氧化物酶(POD)试剂盒

货号:G0107W
规格:
检测方法:微板法(内送酶标板)
检测仪器:酶标仪
价格:
数量:

产品介绍

过氧化物酶(POD,EC 1.11.1.7)广泛存在于动物、植物、微生物和培养细胞中,是普遍存在的一种重要的氧化还原酶,其活性高低与抗性密切相关。在过氧化物酶催化下,H2O2氧化愈创木酚生成红棕色产物,该产物在470nm处有最大光吸收,故可通过测470nm下吸光值变化测定过氧化物酶活性。

所需实验用品

酶标仪、96孔板、台式离心机、可调式移液器、研钵、冰和蒸馏水。

常见问题

1、试剂盒的运输
    生化试剂盒一般采用冰袋运输;运输中冰袋已融化并不会影响其质量,请放心使用。
2、试剂盒的保存:
    收到后,请在预实验前及时确认各组分量是否与说明书标注的一致,若有疑问请及时与我们技术联系(联系方式见说明书右下方),拆开包装后,请按照每个试剂的保存温度保存。
3、试剂盒有效期
     试剂盒大标签上显示试剂盒有效期,一般是3个月或6个月(具体以大标签为准)。粉体试剂加溶液后的保存周期,可参照说明书中“备注”一栏的说明(也可联系说明书下方的技术支持咨询确认)。
4、预实验五步法
    强烈建议客户选取2-3个预期结果差别较大的样本做预测定。
    目的:了解本批样品情况,熟悉实验流程,避免实验样本和试剂浪费!
    第一步:将试剂盒内的纸质版说明书通读一遍,核查试剂数量、状态(粉体、液体)及各组份的量与说明书是否一致,若无异常则按照规定温度存放。
    第二步:临用前取出试剂,溶解或者恢复至室温,以待使用。
    第三步:选择差异大的2-3个样本进行研磨提取,取上清液备用。
    第四步:根据说明书操作步骤进行预实验。
    第五步:待预实验确定好样本检测浓度、调整情况后,再批量进行正式实验。
5、分光法(F)与微板法(W)的区别
    F:指分光法;W:指微板法;
    分光法是指使用紫外可见分光光度计或可见分光光度计检测,分光法试剂盒(货号中带“F”),需要使用石英或玻璃比色皿;其规格是:光径:1cm,容积:1mL, 狭缝宽:3mm
    微板法指使用全波段连续酶标仪检测。微板法试剂盒(货号中带“W”),需要使用96孔酶标板或UV板,其规格是:U型底或平底、最大孔容量300μL
6、普通酶标板与UV板的区别?
    使用酶标仪检测时,如果波长大于等于340nm,使用普通的96孔板;但是波长小于340nm时,需要使用UV板(紫外酶标板);UV板(PS聚苯乙稀石英底)价格比较贵,但是可以清洗,重复使用。一般建议重复使用3-5次;
    最终测定的反应液为有机试剂时(乙酸乙酯、四氢呋喃等有机试剂),避免使用聚苯乙稀材质的96孔板。
7、分光法与微板法试剂盒能混用吗?
    不可以。两者原理几乎一样,但因反应体系、样本用量、试剂浓度、仪器和耗材都不同,并且混用后结果的准确性不能保证,不建议混用与任意改变体系。
8、市面上见到的50T/48S;100T/96S;120T/100S是什么意思?
     T:指测试(Test)次数;在实验室中,这通常指的是反应孔;每个反应孔可以是一个实验样本,或者对照;并不代表测的样本个数。50T是50个反应孔,不一定代表测50个样本; 100T、120T也是如此;
S:指可以测试的样本(Sample)个数;48样、96样:指可以检测48个样本、96个样本(不含重复)即得到48个、96个数据结果
9、官网上试剂盒规格标注的“48样”、“96样”是什么意思呢?
    “48样”、“96样”是试剂盒规格,我们定义了试剂盒可以测多少样,对于试剂盒需要的试剂量都给足的;一般会给到超出需用量的10-20%。
    48样、96样:指可以检测48个样本、96个样本(不含重复)即得到48个、96个最终的数据结果。格锐思生物的试剂盒48样可以测不少于50个样本;96样指可以测定不少于100个样本。
10、标准曲线是否需要重新做?
    一般不建议重新做标准曲线,标准曲线绘制会损耗试剂量,不够测到试剂盒规格的样本数量,另外我们的标准曲线是可以溯源,保证标曲的客观、真实、科学严谨,可以直接使用。
    a、格锐思针对需要标曲曲线的指标,给了标准曲线方程,同时给了标准曲线图,以证实我们的标曲是客观做出来的,不是理论推导的。
    b、格锐思同时给了标准曲线绘制的实验的步骤,客户对标曲有疑问的话,可以按照我们步骤,重新做标曲。
    c、格锐思根据标曲推导出最终的计算公式,客户只需要测出吸光值差值与样本重量就可以带入计算。
11、什么是冰浴匀浆?
    (1)使用研钵匀浆:将研钵置于冰盒上匀浆即冰浴匀浆。称取样本置于研钵中,研钵和提取液提前预冷或将研钵置于碎冰、冰盒上,加入一半量的提取液研磨均匀,转移至离心管中,再向研钵中加入另一半量的提取液涮洗研钵,转移至同一离心管中合并;
    (2)使用匀浆机进行匀浆:先把研磨模块提前放到-20℃预冷;然后将称好的组织放入离心管中,加入适量预冷的提取液、钢珠,按照匀浆机要求设定参数,进行研磨,动物植物组织都可以,对于纤维含量高,难磨样本可以提高赫兹和延长时间。或者多次反复研磨
    (3)使用液氮研磨后匀浆:样本液氮研磨成粉后,加入提取液再次按照(1)、(2)的方式研磨,或者放入超声波清洗仪300W超声5min,超声全程温度不得超过10℃。
12、样本的保存
    测常规指标,样本保存在-80℃下,一年以上都可以测;保存在-40℃下,半年之内都可以测;保存在-20℃下,三个月都没问题。

已发文章

[1].Longfu Zhu,et al. Polyethyleneimine-coated MXene quantum dots improve cotton tolerance to Verticillium dahliae by maintaining ROS homeostasis[J].Nature Communications,2023 IF=16.6
[2].Shuqing Guo,et al. Concurrence of microplastics and heat waves reduces rice yields and disturbs the agroecosystem nitrogen cycle[J].JOURNAL OF HAZARDOUS MATERIALS,2023 IF=14.2
[3].Zhijuan Sun,et al. Melatonin enhances KCl salinity tolerance by maintaining K+ homeostasis in Malus hupehensis[J].PLANT BIOTECHNOLOGY JOURNAL,2023 IF=13.8
[4].Jiantao Fu,et al. Toxicity and Behavioral Effects of Amending Soils with Biochar on Red Imported Fire Ants, Solenopsis invicta[J].Insects,2024 IF=3
[5].Shuo Han,et al. Quorum sensing signal autoinducer-2 promotes hydrogen peroxide degradation in water by Gram-positive bacteria[J].JOURNAL OF HAZARDOUS MATERIALS,2024 IF=13.6
[6].Jiaxin Han,et al. Overexpression of a ‘Beta’ MYB Factor Gene, VhMYB15, Increases Salinity and Drought Tolerance in Arabidopsis thaliana[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2024 IF=5.6
[7].Wang Hao,et al. Whole-Transcriptome Profiling and Identification of Cold Tolerance-Related ceRNA Networks in Japonica Rice Varieties[J].Frontiers in Plant Science,2024 IF=5.6
[8].Zhe Cao,et al. Synthesis of chitin nanocrystals supported Zn2+ with high activity against tobacco mosaic virus[J].INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES,2023 IF=8.2
[9].Qibin Wu,et al. Genome-wide characterization of sugarcane catalase gene family identifies a ScCAT1 gene associated disease resistance[J].INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES,2023 IF=8.025
[10].Lijie Jia,et al. Coupling raw material cultivation with nano-hydroxyapatite application to utilize and remediate severely Cd-containing soil[J].PROCESS SAFETY AND ENVIRONMENTAL PROTECTION,2024 IF=7.8
[11].Jiawei Zhu,et al. Overexpression of MiSPL3a and MiSPL3b confers early flowering and stress tolerance in Arabidopsis thaliana[J].INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES,2024 IF=8.2
[12].Juan Wang,et al. Transcriptome and Metabolome Analyses Reveal Complex Molecular Mechanisms Involved in the Salt Tolerance of Rice Induced by Exogenous Allantoin[J].Antioxidants,2022 IF=7.675
[13].Bin Liu,et al. The regulatory pathway of transcription factor MYB36 from Trichoderma asperellum Tas653 resistant to poplar leaf blight pathogen Alternaria alternata Aal004[J].MICROBIOLOGICAL RESEARCH,2024 IF=6.7
[14].Hu Yunchao,et al. Appropriate Supply of Ammonia and Ammonium Nitrate Reduce Cadmium Content in Rice Seedlings by Inhibiting Cadmium Uptake and Transport[J].Rice Science,2024 IF=4.8
[15].He Jiuxing,et al. Cellobiose elicits immunity in lettuce conferring resistance against[J].JOURNAL OF EXPERIMENTAL BOTANY,2022 IF=7.298
[16].Wang Rong,et al. Eco-physiological characteristics of Tetracentron sinense Oliv. saplings in response to different light intensities[J].JOURNAL OF FORESTRY RESEARCH,2024 IF=3
[17].Jialin Chen,et al. CsAP2L transcription factor regulates resistance of citrus fruit to Penicillium digitatum through lignin biosynthesis and ROS metabolism pathways[J].POSTHARVEST BIOLOGY AND TECHNOLOGY,2023 IF=7
[18].Yutan Chu,et al. Melatonin Alleviates Antimony Toxicity by Regulating the Antioxidant Response and Reducing Antimony Accumulation in Oryza sativa L.[J].Antioxidants,2023 IF=7
[19].Qingqing Li,et al. ABC transporter SlABCG23 regulates chilling resistance of tomato fruit by affecting JA signaling pathway[J].POSTHARVEST BIOLOGY AND TECHNOLOGY,2023 IF=7
[20].Yao Liu,et al. Methionine enhances disease resistance of jujube fruit against postharvest black spot rot by activating lignin biosynthesis[J].POSTHARVEST BIOLOGY AND TECHNOLOGY,2022 IF=6.751
[21].Yao Liu,et al. Methionine enhances disease resistance of jujube fruit against postharvest black spot rot by activating lignin biosynthesis[J].POSTHARVEST BIOLOGY AND TECHNOLOGY,2022 IF=6.751
[22].Feifei An,et al. Flavonoid accumulation modulates the responses of cassava tuberous roots to postharvest physiological deterioration[J].POSTHARVEST BIOLOGY AND TECHNOLOGY,2023 IF=6.751
[23].Ting Li,et al. Transcription factor CsERF1B regulates postharvest citrus fruit resistance to Penicillium digitatum[J].POSTHARVEST BIOLOGY AND TECHNOLOGY,2023 IF=6.751
[24].Yigong Zhang,et al. Structure, development, and the salt response of salt bladders in Chenopodium album L.[J].Frontiers in Plant Science,2022 IF=6.627
[25].Dan Wang,et al. Genome-wide analysis of the homeodomain-leucine zipper family in Lotus japonicus and the overexpression of LjHDZ7 in Arabidopsis for salt tolerance.[J].Frontiers in Plant Science,2022 IF=6.627
[26].Pingping Li,et al. Integrating GWAS and transcriptomics to identify candidate genes conferring heat tolerance in rice[J].Frontiers in Plant Science,2023 IF=6.627
[27].Ren Chunyuan,et al. Genome-wide identification of the B3 gene family in soybean and the response to melatonin under cold stress[J].Frontiers in Plant Science,2023 IF=6.627
[28].Yilin Mao,et al. Low temperature response index for monitoring freezing injury of tea plant[J].Frontiers in Plant Science,2023 IF=6.627
[29].Zhiyin Jiao,et al. Integration of transcriptome and metabolome analyses reveals sorghum roots responding to cadmium stress through regulation of the flavonoid biosynthesis pathway[J].Frontiers in Plant Science,2023 IF=6.627
[30].Chang-Le Ma,et al. Metabolomics analysis of the nutraceutical diversity and physiological quality of Torreya yunnanensis seeds during cold storage[J].PLANT PHYSIOLOGY AND BIOCHEMISTRY,2023 IF=6.5
[31].Ping Wu,et al. Integrative chemical, physiological, and metabolomics analyses reveal nanospecific phytotoxicity of metal nanoparticles[J].JOURNAL OF ENVIRONMENTAL MANAGEMENT,2024 IF=8.7
[32].Jingnan Hu,et al. Importance of abscisic acid and zeatin nucleosides for the nitrate-induced cadmium hyperaccumulation in Populus roots[J].ENVIRONMENTAL AND EXPERIMENTAL BOTANY,2024 IF=5.7
[33].Jiajia Wang,et al. LEAF TIP RUMPLED 1 Regulates Leaf Morphology and Salt Tolerance in Rice[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2022 IF=6.208
[34].Jie Cui,et al. Transcriptome and Metabolome Analyses Revealed the Response Mechanism of Sugar Beet to Salt Stress of Different Durations[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2022 IF=6.208
[35].Caiyun Xiong,et al. Physiological and Molecular Characteristics of Southern Leaf Blight Resistance in Sweet Corn Inbred Lines[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2022 IF=6.208
[36].Caiyun Xiong,et al. Physiological and Molecular Characteristics of Southern Leaf Blight Resistance in Sweet Corn Inbred Lines[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2022 IF=6.208
[37].Zhanyu Chen,et al. Molecular Characterization and Drought Resistance of GmNAC3 Transcription Factor in Glycine max (L.) Merr.[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2022 IF=6.208
[38].Kebin Yang,et al. Identification of KFB Family in Moso Bamboo Reveals the Potential Function of PeKFB9 Involved in Stress Response and Lignin Polymerization[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2022 IF=6.208
[39].Weidong Zhao,et al. Cloning and Characterization of Two Novel PR4 Genes from Picea asperata[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2022 IF=6.208
[40].Xingang Li,et al. GmGSTU23 Encoding a Tau Class Glutathione S-Transferase Protein Enhances the Salt Tolerance of Soybean (Glycine max L.)[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2023 IF=6.208
[41].Qiran Sun,et al. Role of reactive oxygen species (ROS) signaling pathway in the wound-induced spore formation of Pyropia yezoensis[J].Algal Research-Biomass Biofuels and Bioproducts,2024 IF=5.1
[42].Yan Wang,et al. Regulating Root Fungal Community Using Mortierella alpina for Fusarium oxysporum Resistance in Panax ginseng[J].Frontiers in Microbiology,2022 IF=6.064
[43].Yan Wang,et al. Regulating Root Fungal Community Using Mortierella alpina for Fusarium oxysporum Resistance in Panax ginseng[J].Frontiers in Microbiology,2022 IF=6.064
[44].Fangfang Xu,et al. Synergic mitigation of saline-alkaline stress in wheat plant by silicon and Enterobacter sp. FN0603[J].Frontiers in Microbiology,2023 IF=6.064
[45].Lei Wang,et al. Dark septate endophyte Exophiala pisciphila promotes maize growth and alleviates cadmium toxicity[J].Frontiers in Microbiology,2023 IF=6.064
[46].Jinxin Liu,et al. Biocontrol ability and action mechanism of Bacillus amyloliquefaciens Baf1 against Fusarium incarnatum causing fruit rot in postharvest muskmelon (cv. Yugu) fruit[J].LWT-FOOD SCIENCE AND TECHNOLOGY,2023 IF=6.056
[47].Ming Gao,et al. Sex-specific physiological and biochemical responses of Litsea cubeba under waterlogging stress[J].ENVIRONMENTAL AND EXPERIMENTAL BOTANY,2022 IF=6.028
[48].Ming Gao,et al. Sex-specific physiological and biochemical responses of Litsea cubeba under waterlogging stress[J].ENVIRONMENTAL AND EXPERIMENTAL BOTANY,2022 IF=6.028
[49].Hubiao Jiang,et al. Effect of the Nanoparticle Exposures on the Tomato Bacterial Wilt Disease Control by Modulating the Rhizosphere Bacterial Community[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2021 IF=5.924
[50].Hubiao Jiang,et al. Effect of the Nanoparticle Exposures on the Tomato Bacterial Wilt Disease Control by Modulating the Rhizosphere Bacterial Community[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2021 IF=5.924
[51].Chongxi Liu,et al. Integrated Physiological, Transcriptomic, and Metabolomic Analysis Reveals the Mechanism of Guvermectin Promoting Seed Germination in Direct-Seeded Rice under Chilling Stress[J].JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY,2023 IF=5.895
[52].Yuelei Wang,et al. Low-Toxicity Self-Photosensitized Biohybrid Systems for Enhanced Light-Driven H2 Production[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2024 IF=5.6
[53].Tingting Li,et al. Resveratrol Alleviates the KCl Salinity Stress of Malus hupehensis Rhed[J].Frontiers in Plant Science,2021 IF=5.754
[54].Tingting Li,et al. Resveratrol Alleviates the KCl Salinity Stress of Malus hupehensis Rhed[J].Frontiers in Plant Science,2021 IF=5.754
[55].Raza Ali,et al. Integrated Analysis of Metabolome and Transcriptome Reveals Insights for Cold Tolerance in Rapeseed (Brassica napus L.)[J].Frontiers in Plant Science,2021 IF=5.754
[56].Raza Ali,et al. Integrated Analysis of Metabolome and Transcriptome Reveals Insights for Cold Tolerance in Rapeseed (Brassica napus L.)[J].Frontiers in Plant Science,2021 IF=5.754
[57].Dao-Jun Guo,et al. Differential Protein Expression Analysis of Two Sugarcane Varieties in Response to Diazotrophic Plant Growth-Promoting Endophyte Enterobacter roggenkampii ED5[J].Frontiers in Plant Science,2021 IF=5.754
[58].Dao-Jun Guo,et al. Differential Protein Expression Analysis of Two Sugarcane Varieties in Response to Diazotrophic Plant Growth-Promoting Endophyte Enterobacter roggenkampii ED5[J].Frontiers in Plant Science,2021 IF=5.754
[59].Ali Raza,et al. Mechanistic Insights Into Trehalose-Mediated Cold Stress Tolerance in Rapeseed ( Brassica napus L.) Seedlings[J].Frontiers in Plant Science,2022 IF=5.754
[60].Ali Raza,et al. Mechanistic Insights Into Trehalose-Mediated Cold Stress Tolerance in Rapeseed ( Brassica napus L.) Seedlings[J].Frontiers in Plant Science,2022 IF=5.754
[61].Wu Yang,et al. Roles of Antioxidant Enzymes, Secondary Metabolites, and Lipids in Light Adaption of Tea-Oil Plant (Camellia oleifera Abel)[J].JOURNAL OF PLANT GROWTH REGULATION,2024 IF=4.8
[62].Junliang Li,et al. Unique Features of the m6A Methylome and Its Response to Salt Stress in the Roots of Sugar Beet (Beta vulgaris)[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2023 IF=5.6
[63].Guohua Lv,et al. A microencapsulation approach to design microbial seed coatings to boost wheat seed germination and seedling growth under salt stress[J].Frontiers in Plant Science,2023 IF=5.6
[64].Qingqing Qin,et al. Enhancing malting performance of harder barley varieties through ultrasound treatment[J].ULTRASONICS SONOCHEMISTRY,2024 IF=8.4
[65].Haohong Tang,et al. Genome-Wide Identification of Peanut B-Boxs and Functional Characterization of AhBBX6 in Salt and Drought Stresses[J].Plants-Basel,2024 IF=4.5
[66].Haohong Tang,et al. Genome-Wide Identification of Peanut B-Boxs and Functional Characterization of AhBBX6 in Salt and Drought Stresses[J].Plants-Basel,2024 IF=4.5
[67].Qi Li, Xiaolei Yang,et al. Comparison of bio-beads combined with Pseudomonas edaphica and three phosphate materials for lead immobilization: Performance, mechanism and plant growth[J].JOURNAL OF ENVIRONMENTAL MANAGEMENT,2024 IF=8.7
[68].Du Ling, Wu Dongming,et al. Joint toxicity of cadmium (II) and microplastic leachates on wheat seed germination and seedling growth[J].ENVIRONMENTAL GEOCHEMISTRY AND HEALTH,2024 IF=4.2
[69].Qing-Qing Shen,et al. The SsWRKY1 transcription factor of Saccharum spontaneum enhances drought tolerance in transgenic Arabidopsis thaliana and interacts with 21 potential proteins to regulate drought tolerance in S. spontaneum[J].PLANT PHYSIOLOGY AND BIOCHEMISTRY,2023 IF=5.437
[70].Jiang, Na,et al. Responses of antioxidant enzymes and key resistant substances in perennial ryegrass (Lolium perenne L.) to cadmium and arsenic stresses[J].BMC PLANT BIOLOGY,2022 IF=5.26
[71].Jiang, Na,et al. Responses of antioxidant enzymes and key resistant substances in perennial ryegrass (Lolium perenne L.) to cadmium and arsenic stresses[J].BMC PLANT BIOLOGY,2022 IF=5.26
[72].Yan Jia,et al. Effects of root characteristics on panicle formation in japonica rice under low temperature water stress at the reproductive stage[J].FIELD CROPS RESEARCH,2021 IF=5.224
[73].Yan Jia,et al. Effects of root characteristics on panicle formation in japonica rice under low temperature water stress at the reproductive stage[J].FIELD CROPS RESEARCH,2021 IF=5.224
[74].Junliang Li,et al. Analysis of N6-methyladenosine reveals a new important mechanism regulating the salt tolerance of sugar beet (Beta vulgaris)[J].PLANT SCIENCE,2023 IF=5.2
[75].Lei Sun,et al. Bacillus velezensis BVE7 as a promising agent for biocontrol of soybean root rot caused by Fusarium oxysporum[J].Frontiers in Microbiology,2023 IF=5.2
[76].Yanyan Tang,et al. Candidate genes conferring ethylene-response in cultivated peanuts determined by BSA-seq and fine-mapping[J].Crop Journal,2024 IF=6.6
[77].Xianliang Zhang,et al. Genome-Wide Analysis Elucidates the Roles of GhTIR1/AFB Genes Reveals the Function of Gh_D08G0763 (GhTIR1) in Cold Stress in G. hirsutum[J].Plants-Basel,2024 IF=4.5
[78].Chenglei Zhu,et al. A bamboo bHLH transcription factor PeRHL4 has dual functions in enhancing drought and phosphorus starvation tolerance[J].PLANT CELL AND ENVIRONMENT,2024 IF=7.3
[79].Liu, Yonglin,et al. Sulfur fertiliser enhancement of Erigeron breviscapus (Asteraceae) quality by improving plant physiological responses and reducing soil cadmium bioavailability[J].ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH,2022 IF=5.19
[80].Liu, Yonglin,et al. Sulfur fertiliser enhancement of Erigeron breviscapus (Asteraceae) quality by improving plant physiological responses and reducing soil cadmium bioavailability[J].ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH,2022 IF=5.19
[81].Ran Yang, Kangshi Li,et al. ZmNAC17 Regulates Mesocotyl Elongation by Mediating Auxin and ROS Biosynthetic Pathways in Maize[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2024 IF=5.6
[82].An, Peiqi,et al. Genetic transformation of LoHDZ2 and analysis of its function to enhance stress resistance in Larix olgensis[J].Scientific Reports,2022 IF=4.996
[83].An, Peiqi,et al. Genetic transformation of LoHDZ2 and analysis of its function to enhance stress resistance in Larix olgensis[J].Scientific Reports,2022 IF=4.996
[84].Liu, Xinyu,et al. Differential effects of low and high temperature stress on pollen germination and tube length of mango (Mangifera indica L.) genotypes[J].Scientific Reports,2023 IF=4.996
[85].Qin, Ruofan,et al. Analysis of oxidase activity and transcriptomic changes related to cutting propagation of hybrid larch[J].Scientific Reports,2023 IF=4.996
[86].Li, Yanmei,et al. VaSUS2 confers cold tolerance in transgenic tomato and Arabidopsis by regulation of sucrose metabolism and ROS homeostasis[J].PLANT CELL REPORTS,2023 IF=4.964
[87].Peng Mu,et al. Genomic features of a plant growth-promoting endophytic Enterobacter cancerogenus JY65 dominant in microbiota of halophyte Suaeda salsa[J].PLANT AND SOIL,2023 IF=4.9
[88].Daowu Hu,et al. Identification and Characterization of the Growth-Regulating Factors-Interacting Factors in Cotton[J].Frontiers in Genetics,2022 IF=4.772
[89].Daowu Hu,et al. Identification and Characterization of the Growth-Regulating Factors-Interacting Factors in Cotton[J].Frontiers in Genetics,2022 IF=4.772
[90].Yangyang Sun,et al. Phenylpropanoid metabolism in relation to peel browning development of cold-stored ‘Nanguo’ pears[J].PLANT SCIENCE,2022 IF=4.729
[91].Yangyang Sun,et al. Phenylpropanoid metabolism in relation to peel browning development of cold-stored ‘Nanguo’ pears[J].PLANT SCIENCE,2022 IF=4.729
[92].Cun Yu,et al. Trichoderma longibrachiatum Inoculation Improves Drought Resistance and Growth of Pinus massoniana Seedlings through Regulating Physiological Responses and Soil Microbial Community[J].Journal of Fungi,2023 IF=4.7
[93].Junfeng Cao,et al. Integrating transcriptome and physiological analyses to elucidate the molecular responses of sorghum to fluxofenim and metolachlor herbicide[J].PESTICIDE BIOCHEMISTRY AND PHYSIOLOGY,2023 IF=4.7
[94].Shifa Xiong,et al. Effects of Drought Stress and Rehydration on Physiological and Biochemical Properties of Four Oak Species in China[J].Plants-Basel,2022 IF=4.658
[95].Ying Zhou,et al. Proteomic Investigation of Molecular Mechanisms in Response to PEG-Induced Drought Stress in Soybean Roots[J].Plants-Basel,2022 IF=4.658
[96].Xiaomei Li,et al. Characterization of Chlorophyll Fluorescence and Antioxidant Defense Parameters of Two Gracilariopsis lemaneiformis Strains under Different Temperatures[J].Plants-Basel,2023 IF=4.658
[97].Hao Wu,et al. Disruption of LEAF LESION MIMIC 4 affects ABA synthesis and ROS accumulation in rice[J].Crop Journal,2023 IF=4.647
[98].Tang Yuwei,et al. Transcriptome and WGCNA reveal hub genes in sugarcane tiller seedlings in response to drought stress[J].Scientific Reports,2023 IF=4.6
[99].Zhao Nannan,et al. Transcriptome and Co-expression Network Analyses Reveal Differential Gene Expression and Pathways in Response to Severe Drought Stress in Peanut (Arachis hypogaea L.)[J].Frontiers in Genetics,2021 IF=4.599
[100].Hong Zhu,et al. The Sweet Potato K+ Transporter IbHAK11 Regulates K+ Deficiency and High Salinity Stress Tolerance by Maintaining Positive Ion Homeostasis[J].Plants-Basel,2023 IF=4.5
[101].Hao Chen,et al. Enhancing the Adaptability of Tea Plants (Camellia sinensis L.) to High-Temperature Stress with Small Peptides and Biosurfactants[J].Plants-Basel,2023 IF=4.5
[102].Ye Yuan,et al. Promotional Properties of ACC Deaminase-Producing Bacterial Strain DY1-3 and Its Enhancement of Maize Resistance to Salt and Drought Stresses[J].Microorganisms,2023 IF=4.5
[103].Shizhong Zheng,et al. Physiological and Transcriptome Analyses Reveal the Protective Effect of Exogenous Trehalose in Response to Heat Stress in Tea Plant (Camellia sinensis)[J].Plants-Basel,2024 IF=4.5
[104].Zhao Qingrong,et al. Function of MYB8 in larch under PEG simulated drought stress[J].Scientific Reports,2024 IF=4.6
[105].Xin Liu,et al. Short-term anaerobic treatment with microperforated packaging enhanced postharvest quality of Stropharia rugosoannulata mushrooms[J].Food Packaging and Shelf Life,2024 IF=8
[106].Jinyu Yang,et al. Light Intensity Affects Growth and Nutrient Value of Hydroponic Barley Fodder[J].Agronomy-Basel,2024 IF=3.7
[107].Liu, Xiaohui,et al. Study on browning mechanism of fresh-cut eggplant (Solanum melongena L.) based on metabolomics, enzymatic assays and gene expression[J].Scientific Reports,2021 IF=4.38
[108].Ting Fang,et al. Phytic Acid Treatment Inhibits Browning and Lignification to Promote the Quality of Fresh-Cut Apples during Storage[J].Foods,2022 IF=4.35
[109].Fulei Mo,et al. Genome-wide identification and expression analysis of SLAC1 gene family in tomato (Solanum lycopersicum) and the function of SlSLAC1–6 under cold stress[J].SCIENTIA HORTICULTURAE,2023 IF=4.342
[110].He Qiulan,et al. Elucidating the molecular mechanisms of exogenous melatonin for improving heat tolerance in Solanum tuberosum L. seedlings[J].SCIENTIA HORTICULTURAE,2023 IF=4.3
[111].Shuqing Guo,et al. Heat Waves Coupled with Nanoparticles Induce Yield and Nutritional Losses in Rice by Regulating Stomatal Closure[J].ACS Nano,2024 IF=17.1
[112].Xiuzhen Zhai,et al. Overexpression of the peroxidase gene ZmPRX1 increases maize seedling drought tolerance by promoting root development and lignification[J].Crop Journal,2024 IF=6.6
[113].Hong Zhu,et al. The Sweetpotato Voltage-Gated K+ Channel β Subunit, KIbB1, Positively Regulates Low-K+ and High-Salinity Tolerance by Maintaining Ion Homeostasis[J].Genes,2022 IF=4.141
[114].Meixuan Xie,et al. Growth physiology and chlorophyll fluorescence analysis of two moss species under different LED light qualities[J].PLANT PHYSIOLOGY AND BIOCHEMISTRY,2024 IF=6.5
[115].Song Yu,et al. Common Bean (Phaseolus vulgaris L.) NAC Transcriptional Factor PvNAC52 Enhances Transgenic Arabidopsis Resistance to Salt, Alkali, Osmotic, and ABA Stress by Upregulating Stress-Responsive Genes[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2024 IF=5.6
[116].Yun-Ze Chen,et al. Transcriptomic analysis of interactions between Lymantria dispar larvae and carvacrol[J].PESTICIDE BIOCHEMISTRY AND PHYSIOLOGY,2021 IF=3.963
[117].Siting Chen,et al. Physiological and multi-omics analysis reveals the influence of copper on Halophila beccarii Asch[J].PLANT PHYSIOLOGY AND BIOCHEMISTRY,2024 IF=6.5
[118].Xiaodong Zheng,et al. Exogenous Strigolactones alleviate KCl stress by regulating photosynthesis, ROS migration and ion transport in Malus hupehensis Rehd[J].PLANT PHYSIOLOGY AND BIOCHEMISTRY,2020 IF=3.72
[119].Wangjing Zhai,et al. Antibiotics alter the metabolic profile of metolachlor in soil–plant system by disturbing the detoxifying process and oxidative stress[J].BIORESOURCE TECHNOLOGY,2024 IF=9.7
[120].Chiyu Zhou,et al. Physiological Characteristics and Transcriptomic Responses of Pinus yunnanensis Lateral Branching to Different Shading Environments[J].Plants-Basel,2024 IF=4
[121].Zhang Yile,et al. The effect of bioC gene on ultraviolet radiation and oxidative resistance of Bacillus thuringiensis (Bacillales: Bacillaceae)[J].BIOCONTROL,2024 IF=2.2
[122].Li, Luhua,et al. Wheat TaANS-6D positively regulates leaf senescence through the abscisic acid mediated chlorophyll degradation in tobacco[J].PLANT GROWTH REGULATION,2022 IF=3.412
[123].Jia Shuao,et al. Appropriate carbon–nitrogen ratio is beneficial to the accumulation of 9-cis-β-carotene during Dunaliella salina cultivation[J].JOURNAL OF APPLIED PHYCOLOGY,2023 IF=3.3
[124].Lei Zhang,et al. Glutathione, carbohydrate and other metabolites of Larix olgensis A. Henry reponse to polyethylene glycol-simulated drought stress[J].PLoS One,2021 IF=3.24
[125].Yingjie Yang,et al. Mineral and Metabolome Analyses Provide Insights into the Cork Spot Disorder on ‘Akizuki’ Pear Fruit[J].Horticulturae,2023 IF=3.1
[126].Xu Simin,et al. Enhancing the Thermotolerance of Isochrysis zhangjiangensis Through Co-culturing With Algoriphagus marincola[J].MARINE BIOTECHNOLOGY,2023 IF=3
[127].Meng Yang,et al. Transcriptomic Response to Drought Stress in Populus davidiana Dode[J].Forests,2023 IF=2.9
[128].Tingting Liu,et al. Glycine-doped metal–organic frameworks as intelligent nanocarriers to enhance pesticide delivery and provide micronutrient in plants[J].CHEMICAL ENGINEERING JOURNAL,2024 IF=13.3
[129].Chen, Siting,et al. Overexpression of Zostera japonica 14-3-3 gene ZjGRF1 enhances the resistance of transgenic Arabidopsis to copper stress[J].MOLECULAR BIOLOGY REPORTS,2022 IF=2.742
[130].Chen Siting,et al. Overexpression of Zostera japonica J protein gene ZjDjB1 in Arabidopsis enhanced the tolerance to lead stress[J].MOLECULAR BIOLOGY REPORTS,2023 IF=2.742
[131].Hang Yang,et al. Artemisia baimaensis allelopathy has a negative effect on the establishment of Elymus nutans artificial grassland in natural grassland[J].Plant Signaling & Behavior,2023 IF=2.734
[132].Liu Yang,et al. Evaluating physiological changes of grass and semishrub species with seasonality for understanding the process of shrub encroachment in semiarid grasslands[J].FUNCTIONAL PLANT BIOLOGY,2020 IF=2.617
[133].Chen, Siting,et al. Overexpression of the intertidal seagrass 14-3-3 gene ZjGRF1 enhances the tolerance of transgenic Arabidopsis to salt and osmotic stress[J].Plant Biotechnology Reports,2022 IF=2.496
[134].Li, Luhua,et al. Overexpression of TaLAX3-1B alters the stomatal aperture and improves the salt stress resistance of tobacco[J].MOLECULAR BIOLOGY REPORTS,2022 IF=2.316
[135].Siyu Miao,et al. Candidate Genes and Favorable Haplotypes Associated with Iron Toxicity Tolerance in Rice[J].INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES,2024 IF=4.9
[136].Liu B. S.,et al. Effects of Light Intensity on Morphological Structure and Physiological Characteristics of Gleditsia sinensis Seedlings[J].RUSSIAN JOURNAL OF PLANT PHYSIOLOGY,2023 IF=1.419
[137].Ruan Renjie,et al. Comparative responses of two maize genotypes with contrasting drought tolerance to biochar application[J].Biochar,2024 IF=13.1
[138].Jingjing Yin,et al. Polystyrene nanoplastics induce cell type-dependent secondary wall reinforcement in rice (Oryza sativa) roots and reduce root hydraulic conductivity[J].JOURNAL OF HAZARDOUS MATERIALS,2024 IF=12.2
[139].Yanhui Che,et al. Activation of the antioxidant system and transduction of the mediated by exogenous calcium improve drought resistance in tobacco[J].Plant Stress,2024 IF=6.8
[140].Yao Wang,et al. An environmental-friendly resistance inducer in crop protection: V2C MXene nanosheets induce plant resistance to Ralstonia solanacearum via the ET/JA signaling pathway[J].INDUSTRIAL CROPS AND PRODUCTS,2024 IF=5.6
[141].Wen-feng Weng,et al. Novel mutations in acetolactate synthase confer high levels of resistance to tribenuron-methyl in Fagopyrum tataricum[J].PESTICIDE BIOCHEMISTRY AND PHYSIOLOGY,2024 IF=4.2
[142].Li Zailiang,et al. Transcriptome analysis discloses antioxidant detoxification mechanism of Gracilaria bailinae under different cadmium concentrations and stress durations[J].Frontiers in Plant Science,2024 IF=4.1
[143].Shuai Wang,et al. Effects of Drought Stress on Leaf Functional Traits and Biomass Characteristics of Atriplex canescens[J].Plants-Basel,2024 IF=4
[144].Yadong Li,et al. Selenium–nitrogen-co-doped carbon dots increase rice seedling growth and salt resistance[J].Crop Journal,2024 IF=6
[145].Luyue Zhang,et al. Integrated physiological and transcriptomic analysis reveals the involvement of photosynthesis and redox homeostasis in response of Arundo donax to low and high nitrogen supply[J].INDUSTRIAL CROPS AND PRODUCTS,2024 IF=5.6
[146].Yigang Yang,et al. Mixed-Oligosaccharides Promoted Seedling Growth of Direct-Seeded Rice under Salt and Alkaline Stress[J].Rice Science,2024 IF=5.6
[147].Shaokang Tang,et al. LrHSP17.2 Plays an Important Role in Abiotic Stress Responses by Regulating ROS Scavenging and Stress-Related Genes in Lilium regale[J].Plants-Basel,2024 IF=4
[148].Yanmei Li,et al. Overexpression of VaSS4 negatively regulates cold tolerance by disturbing ROS balance and decreasing soluble sugar content[J].SCIENTIA HORTICULTURAE,2024 IF=3.9
[149].Xiaonan Sun,et al. Identification of Laccase Genes in Athelia bombacina and Their Interactions with the Host[J].Horticulturae,2024 IF=3.1
[150].Chunyun Lu, Rong Zou,et al. The Growth and Physiological Responses of Gleditsia sinensis Lam. Seedlings with Different Phosphorus Efficiencies to Low Phosphorus Stress[J].Forests,2024 IF=2.4
[151].Jiayi Wang,et al. Preservation of minimally processed carrots using the combination of ultrasound and mild heat ascorbic acid[J].ULTRASONICS SONOCHEMISTRY,2024 IF=8.7
[152].Shenping Xu,et al. Metabolomic and transcriptomic analyses reveal the mechanism of polysaccharide and secondary metabolite biosynthesis in Bletilla striata tubers in response to shading[J].INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES,2024 IF=7.7
[153].Xiaona Tian,et al. The abiotic stress gene (Asg) family member Asg2 as a modulator of plant responses to salt stress[J].Plant Stress,2024 IF=6.8
[154].Qing Ge,et al. Exogenous strigolactone alleviates post-waterlogging stress in grapevine[J].PLANT PHYSIOLOGY AND BIOCHEMISTRY,2024 IF=6.1
[155].Chenglei Zhu,et al. A Bamboo HD-Zip Transcription Factor PeHDZ72 Conferred Drought Tolerance by Promoting Sugar and Water Transport[J].PLANT CELL AND ENVIRONMENT,2024 IF=6
[156].He Zhaojie,et al. Genome‑wide analysis of cotton SCAMP genes and functional characterization of GhSCAMP2 and GhSCAMP4 in salt tolerance[J].BMC PLANT BIOLOGY,2024 IF=4.3
[157].Zeyun Fan,et al. Biological and Physiological Changes in Spodoptera frugiperda Larvae Induced by Non-Consumptive Effects of the Predator Harmonia axyridis[J].Agriculture-Basel,2024 IF=3.3
[158].Liu Yingpin,et al. Lime-assisted cultivation of Erigeron breviscapus: enhancing plant biomass production and scutellarin content in cadmium-contaminated soil[J].JOURNAL OF SOILS AND SEDIMENTS,2024 IF=2.8
[159].Xiaodong Zheng,et al. Exogenous Strigolactones alleviate KCl stress by regulating photosynthesis, ROS migration and ion transport in Malus hupehensis Rehd[J].PLANT PHYSIOLOGY AND BIOCHEMISTRY,2020 IF=3.72
[160].Liu Yang,et al. Evaluating physiological changes of grass and semishrub species with seasonality for understanding the process of shrub encroachment in semiarid grasslands[J].FUNCTIONAL PLANT BIOLOGY,2020 IF=2.617

相关产品

货号 名称 检测方法 规格 价格
G1207W48 溶菌酶(LZM)试剂盒 微板法(内送酶标板) 48样
G1207W 溶菌酶(LZM)试剂盒 微板法(内送酶标板) 96样
G1207F 溶菌酶(LZM)试剂盒 可见分光光度法 48样
G0423W 谷丙转氨酶/丙氨酸氨基转氨酶(GPT/ALT)试剂盒 微板法(内送酶标板) 96样
G0424W 谷草转氨酶/天冬氨酸氨基转氨酶(GOT/AST)试剂盒 微板法(内送酶标板) 96样
G0423F 谷丙转氨酶/丙氨酸氨基转氨酶(GPT/ALT)试剂盒 可见分光光度法 48样
G0204F 谷胱甘肽过氧化物酶(GPX)试剂盒 可见分光光度法 48样
G0204W 谷胱甘肽过氧化物酶(GPX)试剂盒 微板法(内送酶标板) 96样
G0204W48 谷胱甘肽过氧化物酶(GPX)试剂盒 微板法(内送酶标板) 48样
G0206W48 还原型谷胱甘肽(GSH)含量试剂盒 微板法(内送酶标板) 48样
G0207F 氧化型谷胱甘肽(GSSG)含量试剂盒 可见分光光度法 48样
G0207W 氧化型谷胱甘肽(GSSG)含量试剂盒 微板法(内送酶标板) 96样
G0207W48 氧化型谷胱甘肽(GSSG)含量试剂盒 微板法(内送酶标板) 48样
G0146W 酚氧化酶(PO)活性测定试剂盒 微板法(内送酶标板) 96样
G0146F 酚氧化酶(PO)活性测定试剂盒 可见分光光度法 48样
G0105W 过氧化氢酶(CAT)试剂盒 微板法(内送酶标板) 96样
G0105F 过氧化氢酶(CAT)试剂盒 可见分光光度法 48样
G0105W48 过氧化氢酶(CAT)试剂盒 微板法(内送酶标板) 48样
G0108W 过氧化物酶(POD)试剂盒 微板法(内送酶标板) 196样
G0107W 过氧化物酶(POD)试剂盒 微板法(内送酶标板) 96样

助研基金

助研基金申请

JOIN
*发表文章中注明苏州格锐思生物科技有限公司 即可申请。
  • 东北、华北、河南、山东
    199 6214 9029
    西南、西北、重庆
    189 6242 0287
    华东
    189 6214 6968
    湖北、湖南、江西、华南
    199 0615 7379
  • 400-105-8708
    0512-66188056 7*24小时客服服务热线
  • 扫一扫关注