英文:
1. Yan Cheng, Jin Sun, Mengwei Jiang, Ziqiang Luo, Yu Wang, Yanhui Liu, Weiming Li, Bing Hu, Chunxing Dong, Kangzhuo Ye, Zixian Li, Fang Deng, Lulu Wang, Ling Cao, Shijiang Cao, Chenglang Pan, Ping Zheng, Sheng Wang, Mohammad Aslam, Hong Wang, Yuan Qin, Chromosome-scale genome sequence of Suaeda glauca sheds light on salt stress tolerance in halophytes, Horticulture Research, 2023,10(9),161
2. Ma, Y.; Zhong, M.; Li, J.;Jiang, Y.; Zhou, X.; Justice Ijeoma, C.;Tang, X.; Chen, S.; Cao, S*. Genome
Identification and Evolutionary Analysis of LBD Genes and Response to Environmental Factors in Phoebe bournei. Int. J. Mol. Sci. 2023, 24, 12581.( JCR分区Q1,中科院二区IF=6.208)
3. Yin, Z.; Liao, W.; Li, J.; Pan,J.; Yang, S.; Chen, S.; Cao, S*.Genome-Wide Identification of GATA
Family Genes in Phoebe bournei andTheir Transcriptional Analysis underAbiotic Stresses. Int. J. Mol. Sci. 2023,24, 10342.( JCR分区Q1,中科院二区IF=6.208)
4. Chang, J.; Fan, D.; Lan, S.;Cheng, S.; Chen, S.; Lin, Y.; Cao, S*.Genome-Wide Identification, Expression and Stress Analysis of the GRAS Gene Family in Phoebe bournei. Plants. 2023, 12, 2048. (JCR分区Q2,中科院三区,IF=2.182)
5. Ye Z, Guo Q, Wei J, Zhang J, Zhang H,Bian L, Guo S, Zheng X and Cao S(2022). Recognition of terminal buds of densely-planted Chinese fir seedlings using improved YOLOv5 by integrating attention mechanism. Front. Plant Sci.2022.13:991929.
6. Yuan, T.; Liang, J.; Dai, J.;Zhou, X.-R.; Liao, W.; Guo, M.;Aslam, M.; Li, S.; Cao, G.; Cao, S.*
Genome-Wide Identification of Eucalyptus Heat Shock Transcription Factor Family and Their Transcriptional Analysis under Salt and Temperature Stresses. Int. J. Mol. Sci. 2022, 23, 8044.( JCR分区Q1,中科院二区IF=6.208)
7. Chen J, Deng Z, Jiang Z, Sun J, Meng F, Zuo X, Wu L, Cao G and Cao S* (2022) Variations of rhizosphere and bulk soil microbial community in successive planting of Chinese fir (Cunninghamia lanceolata). Front. Plant Sci. 13:954777.( JCR分区Q1,中科院二区IF=6.627)
8. Dai J, Sun J, Peng W, Liao W, Zhou Y,Zhou X-R, Qin Y, Cheng Y and Cao S*(2022) FAR1/FHY3 Transcription Factors Positively Regulate the Salt and Temperature Stress Responses in Eucalyptus grandis. Front. Plant Sci. 13:883654( JCR分区Q1,中科院二区IF=6.627)
9. Jia-Hao Dai;An-Qi Hu;Jia-Shuo Zhang;Wen-Hai Liao;Hua-Yan Ma;Jin-Zhang Wu;Yuan Yu;Shi-Jiang Cao(2021),NF-YB-Mediated Active Responses of Plant Growth under Salt and Temperature Stress in Eucalyptus grandis Plants, 10,1107.(JCR分区Q2,中科院三区,IF=2.182)
10.Cao, S.#, Zhang, J., Cheng, H. et al. Identification and Evolutionary Analysis of FAD2 Gene Family in Green Plants. Tropical Plant Biol. 2021,1.(JCR分区Q2,中科院四区,IF=1.563)
11.Zhang, J., Wu, J., Guo, M., Aslam, M., Wang, Q., Ma, H., Li, S., Zhang, X., & Cao, S.*. Genome-wide characterization and expression profiling of Eucalyptus grandis HD-Zip gene family in response to salt and temperature stress. BMC Plant Biology. 2020,20(1):1-15.(JCR分区Q1,中科院二区,IF=3.497)
12.Cao, S.#, He, S., Lv, H. et al. Genome-Wide Analysis of the Cryptochrome Gene Family in Plants. Tropical Plant Biology. 2020.13, 117-126. (JCR分区Q2,中科院四区,IF=1.563)
13.Cao S.#, Cheng H., Zhang J, Aslam M., Yan M., Hu A., Lin L., Ojolo S.P., Zhao H., Priyadarshani S., Yu Y., Cao G., Qin Y. (2019) Genome-wide identification, expression pattern analysis and evolution of the Ces/Csl gene superfamily in Pineapple (Ananas comosus). Plants, 8, 275.(JCR分区Q2,中科院三区,IF=2.182)
14.Simon P. Ojolo, Shijiang Cao#, S. V. G. N. Priyadarshani, Weimin Li, Maokai Yan, Mohammad Aslam, Heming Zhao and Yuan Qin. Regulation of Plant Growth and Development: A Review From a Chromatin Remodeling Perspective,Front. Plant Sci, 2018,(9).(JCR分区Q1,中科院二区IF=4.402)
15.Cao S, Zhou X-R, Wood C, Green A, Singh S, Liu L, Liu Q. A large and functionally diverse family of Fad2 genes in safflower (Carthamus tinctorius L.). BMC Plant Biol.,2013.13:5. (JCR分区Q1,中科院二区,IF=3.497)
16.Cao S, Zhu QH, Shen W, Jiao X, Zhao X, Wang MB, Liu L, Singh SP, Liu Q. Comparative profiling of miRNA expression in developing seeds of high linoleic and high oleic safflower (CarthamustinctoriusL.) plants.Front.Plant Sci..2013.4:489. (JCR分区Q1,中科院二区IF=4.402)
17.Aslam, M., Jakada, B. H., Fakher, B., Greaves, J. G., Niu, X., Su, Z., Cheng, Y., Cao, S., Wang, X., & Qin, Y. Genome-wide study of pineapple (Ananas comosus L.) bHLH transcription factors indicates that cryptochrome-interacting bHLH2 (AcCIB2) participates in flowering time regulation and abiotic stress response. BMC Genomics 2020,21(1).
18.Aslam, M.*, Fakher, B., Jakada, B.H., Zhao, L., Cao, S., Cheng, Y., Qin, Y. (2019) Genome-Wide Identification and Expression Profiling of CBL-CIPK Gene Family in Pineapple (Ananas comosus) and the Role of AcCBL1 in Abiotic and Biotic Stress Response. Biomolecules, 9, 293.
19.Jakada B.H., Aslam M.*, Fakher B., Greaves J.G., Li Z., Li W., Lai L., Ayoade O.A., Cheng Y., Cao S., Li G., Hu J.-M., Qin Y. Identification of SWI2/SNF2-Related 1 Chromatin Remodeling Complex (SWR1-C) Subunits in Pineapple and the Role of Pineapple SWR1 COMPLEX 6 (AcSWC6) in Biotic and Abiotic Stress Response. Biomolecules,2019, 9(8), 364.
20.Aslam M, Fakher B, Jakada BH, Cao S, Qin Y. SWR1 Chromatin Remodeling Complex: A Key Transcriptional Regulator in Plants. Cells. 2019,8(12).
21.S V G N Priyadarshani;Hanyang Cai;Qiao Zhou;Yanhui Liu;Yan Cheng;Junjie Xiong;Dikoko Lesego Patson;Shijiang Cao;Heming Zhao;Yuan Qin .An Efficient Agrobacterium Mediated Transformation of Pineapple with GFP-Tagged Protein Allows Easy, Non-Destructive Screening of Transgenic Pineapple Plants. Biomolecules,2019, 9(10), 617.
22.Qing Liu, Shijiang Cao, Xue-Rong Zhou, Craig Wood, Allan Green, Surinder Singh. Nonsense-mediated mRNA degradation of CtFAD2-1 and development of a perfect molecular marker for olol mutation in high oleic safflower (Carthamus tinctorius L.). Theoretical and Applied Genetics
2013,26, 2219-2231.
中文:
[1] 陈家琛,左晓东,陈立,朱琴,孟芳芳,廖文海,范福金,曹光球,曹世江.间伐对杉木人工林凋落物分解和养分释放速率的影响[J].西北林学院学报,2023,38(02):119-125.
[2] 费裕翀,伍丽华,陈义堂,叶义全,曹世江,郑宏,林开敏,曹光球.氮添加对杉木凋落物分解过程中酶活性的影响[J].东北林业大学学报,2023,51(05):66-73.
[3] 汪星星,廖文海,孟芳芳,蒋政,曹光球,曹世江.林分密度对杉木人工林土壤理化性质和酶活性的影响[J].福建农林大学学报(自然科学版),2023,52(03):329-336.
[4] 汪星星,廖文海,左晓东,范福金,曹光球,曹世江.密度调控对杉木人工林土壤理化性质的影响[J].东北林业大学学报,2023,51(01):82-87.
[5] 廖文海,戴嘉豪,李洋洋,左晓东,曹光球,曹世江.杉木ClLSMT基因的克隆及其对不同光质与非生物胁迫的响应[J].江西农业大学学报,2023,45(01):146-155.
[6] 汪星星,廖文海,许祖元,左晓东,范福金,曹世江.森林凋落物分解影响因素的研究进展[J].北方园艺,2022(04):126-132.
[7] 汪星星,陈钢,曹光球,曹世江.不同光质对杉木幼苗抗氧化酶活性和叶绿素含量的影响[J].甘肃农业大学学报,2022,57(04):137-146.
[8] 汪星星,陈钢,左晓东,范福金,曹光球,曹世江.光质对杉木幼苗叶片光合作用的影响[J].安徽农业大学学报,2022,49(05):716-723.
[9] 汪星星,陈钢,孟芳芳,朱琴,范福金,曹世江.光质对杉木幼苗光合生理及色素的影响[J].中南林业科技大学学报,2022,42(12):82-90+111.
[10] 汪佳琪,戴嘉豪,陈家琛,林莉莉,曹光球,曹世江.杉木ATP合酶基因的克隆及其在逆境下的表达分析[J].江西农业大学学报,2022,44(02):271-279.
[11] 陈家琛,陈钢,戴嘉豪,范福金,曹光球,曹世江.不同光质配比对杉木幼苗光合生理特征的影响[J].西南农业学报,2022,35(10):2319-2325..
[12] 林莉莉,胡安琪,陈钢,张霁月,曹光球,曹世江*.杉木ClWRKY44基因克隆及其表达特性分析[J].南京林业大学学报(自然科学版),2022,46(01):203-209.
[13] 易雨憧,廖文海,孙进,朱哲宁,程焱,曹世江.杨梅全基因组的GATA转录因子鉴定、功能及进化分析[J].福建农林大学学报(自然科学版),2022,51(05):644-653.
[14] 代林利,陈义堂,伍丽华,刘丽,叶义全,邱静雯,曹世江,曹光球.不同林分密度杉木林养分积累与垂直空间分配[J].应用生态学报,2022,33(02):311-320.
[15] 汪星星,陈钢,戴嘉豪,曹光球,曹世江*.光质对杉木幼苗新叶叶绿素荧光规律的影响[J].福建农林大学学报(自然科学版),2021,50(05):624-629.
[16] 费裕翀,王妍,陈义堂,张筱,陈爱玲,郑宏,曹世江,杨秋菊,曹光球.杉木老龄林不同地形土壤活性铝形态特征[J].四川农业大学学报,2021,39(03):362-369.
[17] 路锦,伍丽华,郑宏,张筱,费裕翀,曹世江,季春杉,曹光球.不同林下植被管理措施对杉木大径材林分土壤真菌群落结构的影响[J].应用与环境生物学报,2021,27(04):938-948.
[18] 梁健翔,吴进樟,张尧,曹世江*.杨梅侧生器官边界域基因组鉴定及进化分析[J].森林与环境学报 2021,41(02):172-180.
[19] 李丁宁,吴进樟,李白杨,曹世江*.巨桉GOLDEN2-LIKE基因家族全基因组鉴定与进化分析[J].福建农林大学学报(自然科学版),2020,49(06):816-824.
[20] 曹世江,汪星星,郭福涛, 梁鹏.《树木生理学》新课堂建设的做法与成果[J].安徽农学通报,2020,26(21):157-158.
[21] 曹世江,杨梦蝶,郭福涛.雨课堂在《树木生理学》课程教学改革实践中的运用[J].产业与科技论坛,2020,19(1):185-186.
[22] 曹世江,陈家琛,梁鹏,丁艳花.《树木生理学》课程案例库建设[J].安徽农学通报,2020,26(20):159-161.
[23] 曹光球,费裕翀,路锦,黄樱,郑宏,林开敏,季春杉,曹世江.林下植被不同管理措施培育杉木大径材林分土壤酶活性差异及质量评价[J].林业科学研究,2020,33(03):76-84.
[24] 费裕翀,黄樱,刘丽,路锦,蔡培菁,张元明,曹世江,曹光球.中亚热带紫色土丘陵区几种典型人工林土壤质量评价[J].东北林业大学学报,2020,48(09):80-87.
[25] 费裕翀,吴庆锥,路锦,季春杉,郑宏,曹世江,林开敏,曹光球.林下植被管理措施对杉木大径材林土壤细菌群落结构的影响[J].应用生态学报,2020,31(2):407-416
[26] 费裕翀,吴庆锥,张筱,路锦,季春杉,林开敏,曹世江,林思祖,曹光球.不同林下植被管理措施对杉木大径材培育林土壤特性与出材量的影响[J].应用与环境生物学报,2020,26(3):626-634.
[27] 费裕翀,吴庆锥,路锦,季春杉,郑宏,曹世江,林开敏,曹光球.不同林下植被管理措施对杉木大径材林土壤细菌群落结构的影响[J].应用生态学报2020,31(02)
[28] 陈钢,母天燕,曹光球,林强,郑宏,曹世江*.杉木蔗糖转运蛋白SUT基因的克隆和功能分析[J].西北林学院学报,2020,35(02):8-14+86.
[29] 林莉莉,郭丽倩,陈潇潇,游章湉,游水生,曹世江*.米槠叶片基因组DNA的提取及分析[J].福建林业科技,2019,46(02):25-29.
[30] 陈潇潇,罗红艳,顾真琪,陈世品,曹光球,曹世江*.油茶CoFAD2-1基因的克隆、亚细胞定位及组织表达[J].四川农业大学学报,2019,37(04):475-480.
[31] 曹世江,林晓晴,陈潇潇,李成成,章欢,曹光球.一种适合杉木微量组织总RNA的提取方法[J].分子植物育种,2019,17(15):5016-5020.
[32] 陈潇潇,曹光球,汪凤林,罗红艳,魏晓骁,曹世江*.杉木纤维素合酶(ClCesA2)基因的克隆与表达分析[J].森林与环境学报,2018,38(01):1-6.
[33] 曹世江,丁艳花,郑长焰.智能手机与高校课堂教学的关系探究—以福建农林大学为例[J].产业与科技论坛,2018,17(21):95-96.
[34] 曹世江,冯丽贞,倪川,丁艳花.“树木生理学”实验微课的建设和应用[J].当代教育实践与教学研究, 2018(10),264,280.
[35] 汪凤林,曹光球,叶义全,陈潇潇,罗红艳,曹世江*.不同光质下杉木幼苗叶片光合作用的光响应[J].森林与环境学报,2017,37(03):366-371.
[36] 魏晓骁,王士亚,陈潇潇,汪凤林,曹光球,曹世江*.一个新杉木纤维素合酶ClCesA基因的克隆与植物表达载体构建[J].福建农林大学学报(自然科学版),2017,46(01):66-72.
[37] 曹世江,黄东,叶义全,林思祖,汪凤林,曹光球.铝钙交互作用对杉木幼苗金属养分吸收的影响[J].江西农业大学学报,2017,39(06):1163-1169.
[38] 曹世江,蔡培菁,汪凤林,陈钢,徐永兴,曹光球.宁化县紫色土区不同森林类型土壤酶活性差异分析,亚热带农业研究2017,13(4):217-222.
[39] 曹世江,黄东,叶义全,林思祖,胡成春,曹光球.铝钙复合作用对杉木幼苗抗氧化能力的影响[J].森林与环境学报,2017,37(02):136-141.
[40] 左丹丹,曹世江,李佳,熊升,林思祖,陈宇.春季杉木球果与叶片的光合特征比较[J].四川农业大学学报,2017,35(04):523-528+573.
[41] 蔡培菁,曹世江,陈爱玲,黎舒,黄田盛,曹光球.宁化县紫色土区不同森林类型土壤理化性质差异[J].亚热带农业研究,2017,13(02):99-104.
[42] 曹光球,陈爱玲,曹世江,周道骏,林思祖.不同林分类型土壤不同化感型杉木无性系根际土壤酶活性季节变化[J].安徽农业科学,2014,42(30):10717-10720.
[43] 曹光球,陈爱玲,曹世江,薛明瑜,吴薇,林思祖.不同化感型杉木无性系根际土壤微生物数量季节动态[J].亚热带农业研究,2014,10(02):73-79.