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1. Liu B#, Xu C#, He Q#, Zhang K#, Qi S, Jin Z, Cheng W, Ding Z, Chen D, Zhao X, Zhang W, Zhang K, Li KP* (ͨѶ×÷Õß) Membralin is required for maize development and defines a branch of the endoplasmic reticulum¨Cassociated degradation pathway in plants. PNAS (USA), 2024, 121: e2406090121. https://doi.org/10.1073/pnas.2406090121
2. Zhang K#, Wang F#, Liu B#, Xu C, He Q, Cheng W, Zhao X, Ding Z, Zhang W, Zhang KW, Li KP* (ͨѶ×÷Õß) ZmSKS13, a cupredoxin domain-containing protein, is required for maize kernel development via modulation of redox homeostasis. New Phytologist, 2021, 229: 2163-2178.
3. Zhang K#, Guo L#, Cheng W#, Liu B, Li W, Wang F, Xu C, Zhao X, Ding Z, Zhang KW, Li KP* (ͨѶ×÷Õß) SH1-dependent maize seed development and starch synthesis via modulating carbohydrate flow and osmotic potential balance. BMC Plant Biol., 2020, 20: 264.
4. Li W#, Liu B#, Zhao M, Zhang K, He Q, Zhao X, Cheng W, Ding Z, Zhang KW, Li KP* (ͨѶ×÷Õß) Isolation and characterization of a 295‑bp strong promoter of maize high‑affinity phosphate transporter gene ZmPht1; 5 in transgenic Nicotiana benthamiana and Zea mays. Planta, 2020, 251: 106.
5. Jiang P#, Zhang K#, Ding Z, He Q, Li W, Zhu S, Cheng W, Zhang KW and Li KP* (ͨѶ×÷Õß), Characterization of a strong and constitutive promoter from the Arabidopsis serine carboxypeptidase-like gene AtSCPL30 as a potential tool for crop transgenic breeding. BMC Biotechnol. 2018, 18: 59.
6. Cheng C, Zhang Y, Chen X, Song J, Guo Z, Li KP and Zhang K, Co-expression of AtNHX1 and TsVP improves the salt tolerance of transgenic cotton and increases seed cotton yield in a saline field. Mol Breeding, 2018, 38: 19.
7. Zhang K, Song J, Chen X, Yin T, Liu C, Li KP and Zhang J, Expression of the Thellungiella halophila vacuolar H+-pyrophosphatase gene (TsVP) in cotton improves salinity tolerance and increases seed cotton yield in a saline field. Euphytica, 2016, 211: 1-14.
8. Zhang H#, Hou J#, Jiang P, Qi S, Xu C, He Q, Ding Z, Wang Z, Zhang K and Li KP*(ͨѶ×÷Õß), Identification of a 467 bp Promoter of Maize Phosphatidylinositol Synthase Gene (ZmPIS) Which Confers High-Level Gene Expression and Salinity or Osmotic Stress Inducibility in Transgenic Tobacco. Front. Plant Sci. 2016, 7: 42.  
9. Hou J#, Jiang P#, Qi S#, Zhang K, He Q, Xu C, Ding Z, Zhang K and Li KP* (ͨѶ×÷Õß), Isolation and Functional Validation of Salinity and Osmotic Stress Inducible Promoter from the Maize Type-II H+-Pyrophosphatase Gene by Deletion Analysis in Transgenic Tobacco Plants. Plos One, 2016, 11(4): e0154041.
10. Zhang K, Liu H, Song J, Wu W, Li KP, Zhang J, Physiological and comparative proteome analyses reveal low-phosphate tolerance and enhanced photosynthesis in a maize mutant owing to reinforced inorganic phosphate recycling. BMC Plant Biol. 2016, 16(1):129.
11. Li KP#* (ͨѶ×÷Õß), Xu C#, Fan W, Zhang H, Hou J, Yang A and Zhang K, Phosphoproteome and proteome analyses reveal low-phosphate mediated plasticity of root developmental and metabolic regulation in maize (Zea mays L.). Plant Physiol. Biochem. 2014, 83: 232-242.
12. Pei L, Jin Z, Li KP, Yin HY, Wang JM and Yang AF, Identification and comparative analysis of low phosphate tolerance-associated microRNAs in two maize genotypes. Plant Physiol Biochem. 2013, 70: 221-234.
13. Pei L, Wang JM, Li KP, Li YJ, Li B, Gao F and Yang AF, Overexpression of Thellungiella halophila H+-pyrophosphatase Gene Improves Low Phosphate Tolerance in Maize£¬Plos One, 2012,7: e43501.
14. Li ZX, Xu CZ, Li KP, Yan S, Qu X and Zhang JR, Phosphate starvation of maize inhibits lateral root formation and alters gene expression in the lateral root primordium zone, BMC Plant Biol. 2012, 12:89.
15. Li KP#, Xu CZ#, Zhang JR. Proteome profile of maize (Zea Mays L.) leaf tissue at the flowering stage after long-term adjustment to rice black-streaked dwarf virus infection. Gene, 2011, 485: 106-113.
16. Sun QH, Gao F, Zhao L, Li KP, Zhang JR. Identification of a new 130 bp cis-acting element in the TsVP1 promoter involved in the salt stress response from Thellungiella halophila. BMC Plant Biol., 2010, 10: 90.
17. Li KP, Xu CZ, Li ZX, Zhang KW, Yang AF, Zhang JR, Comparative proteome analyses of phosphorus responses in maize (Zea mays L.) roots of wild-type and low-P-tolerant mutant reveal root characteristics associated with P-efficiency. Plant J., 2008, 55: 927-939.
18. Li KP, Xu CZ, Li ZX, Zhang KW, Yang AF, Zhang JR, Proteomic analysis of roots growth and metabolic changes under phosphorus deficit in maize (Zea mays L.) plants. Proteomics, 2007, 7: 1501-1512.
19. Li KP, Xu ZP, Zhang KW, Yang AF, Zhang JR, Efficient production and characterization for maize inbred lines with low-phosphorus tolerance. Plant Sci., 2007, 172: 255-264.
20. Xu Z, Li KP, Liu Z, Zhang K and Zhang J, Correlations between Kinetic Parameters of Phosphate Uptake and Internal Phosphorus Concentrations in Maize (Zea mays L.)Plants: Making It Possible to Estimate the Status of Phosphate Uptake According to Shoot Phosphorus Concentrations. Communications in Soil Science and Plant Analysis, 2007, 38:2519-2533.
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