出版情况 |
[1] Huang Y, Fu H, Huang B, Xin J, Shen C*. Apoplastic retention over vacuolar sequestration: a potential more efficient strategy limiting root-to-shoot cadmium translocation in leafy vegetable crops. Plant Physiology and Biochemistry. 2026,237:111470. (IF = 6.4,中科院2区Top) [2] Huang Y, Fu H, Liao Q, Huang B, Wang B, Wei Y, Xin J, Shen C*. Energy metabolism contributes to cultivar-dependent cadmium accumulation in Ipomoea aquatica. Plant Physiology and Biochemistry. 2026,230:110935. (IF = 6.4,中科院2区Top) [3] Shen C, Fu HL, Zheng ZT, Xin JL, Huang YY*. Effect of Exogenous STTM397 and miRNA397 on Cadmium Uptake and Accumulation in Water Spinach (Ipomoea aquatica). Journal of Agricultural and Food Chemistry. 2025, 73, 44, 28395-28406. (IF = 6.2,中科院1区Top) [4] Shen C, Huang BF, Liao Q, Chen KF, Xin JL, Huang YY*. Uncovering differences in cadmium accumulation capacity of different Ipomoea aquatica cultivars at the level of root cell types. Horticulture Research. 2025, uhaf077. (IF = 8.5,中科院1区Top) [5] Huang Y, Liao Q, Wang X, Fu H, Huang B, Xin J, Shen C*. Roles and mechanisms of boron in reducing cadmium accumulation in crops. Ecotoxicol Environ Saf. 2025, 296:118216. (IF =6.1,中科院2区) [6] Shen C, Huang B, Hu L, Yuan H, Huang Y, Wang Y, Sun Y, Li Y, Zhang J, Xin J*. Comparative transcriptome analysis and Arabidopsis thaliana overexpression reveal key genes associated with cadmium transport and distribution in root of two Capsicum annuum cultivars. J Hazard Mater. 2024, 5(465):133365. (IF = 11.3,中科院1区Top) [7] Shen C, Fu H, Huang B, Liao Q, Huang Y, Wang Y, Wang Y, Xin J*. Physiological and molecular mechanisms of boron in alleviating cadmium toxicity in Capsicum annuum. Sci Total Environ. 2023, 10(903):166264. (IF = 8.0,中科院1区) [8] Shen C, Huang YY, Liao Q, Huang BF, Xin JL, Wang L, Fu HL*. Characterization of cadmium accumulation mechanism between eggplant (Solanum melongena L.) cultivars. Front Plant Sci. 2023,9(13):1097998. (IF = 4.8,中科院2区) [9] Shen C, Yang YM, Sun YF, Zhang M, Chen XJ, Huang YY*. The regulatory role of abscisic acid on cadmium uptake, accumulation and translocation in plants. Front Plant Sci. 2022,13:953717. (IF = 4.8,中科院2区) [10] Shen C, Fu HL, Liao Q, Huang B, Fan X, Liu XY, Xin JL*, Huang YY*. Transcriptome analysis and physiological indicators reveal the role of sulfur in cadmium accumulation and transportation in water spinach (Ipomoea aquatica Forsk.). Ecotoxicol Environ Saf. 2021, 225:112787. (IF =6.1,中科院2区) [11] Huang YY, Fei G, Yu SL, Liu YF, Fu HL, Liao Q, Huang BF, Liu XY, Xin JL*, Shen C*. Molecular and biochemical mechanisms underlying boron-induced alleviation of cadmium toxicity in rice seedlings. Ecotoxicol Environ Saf. 2021 225:112776. (IF =6.1,中科院2区) [12] Shen C, Huang YY, Xin JL, He CT, Yang ZY*. A novel microRNA IamiR-4-3p from water spinach (Ipomoea aquatica Forsk.) increased Cd uptake and translocation in Arabidopsis thaliana. Environ Sci Pollut Res Int. 2022, 29(27):41375-41385. [13] Shen C, Fu HL, Liao Q, Huang BF, Huang YY, Xin JL*. Selection for low-cadmium cultivars and cadmium subcellular distribution comparison between two selected cultivars of eggplant (Solanum melongena L.). Environ Sci Pollut Res Int. 2021, 28(41):57739-57750. [14] Shen C, Huang YY, He CT, Zhou Q, Chen JX, Tan X, Mubeen S, Yuan JG, Yang ZY*. Comparative analysis of cadmium responsive microRNAs in roots of two Ipomoea aquatica Forsk. cultivars with different cadmium accumulation capacities. Plant Physiol Biochem.2017,111:329-339. (IF = 5.7,中科院2区Top) |