[1] DING N,HUERTAS R,TORRES-JEREZ I,et al. Transcriptional,metabolic,physiological and developmental responses of switchgrass to phosphorus limitation[J]. Plant,Cell & Environment,2021,44(1):186-202 [2] PRATHAP V,KUMAR A,MAHESHWARI C,et al. Phosphorus homeostasis:acquisition,sensing,and long-distance signaling in plants[J]. Molecular Biology Reports,2022,49(8):8071-8086 [3] CORDELL D,DRANGERT J O,WHITE S. The story of phosphorus:global food security and food for thought[J]. Global Environmental Change,2009,19(2):292-305 [4] WANG Z,ZHENG Z,ZHU Y M,et al. PHOSPHATE RESPONSE 1 family members act distinctly to regulate transcriptional responses to phosphate starvation[J]. Plant Physiology,2023,191(2):1324-1343 [5] NILSSON L,MÜLLER R,NIELSEN T H. Increased expression of the MYB-related transcription factor,PHR1,leads to enhanced phosphate uptake in Arabidopsis thaliana[J]. Plant,Cell & Environment,2007,30(12):1499-1512 [6] RUAN W Y,GUO M N,WU P,et al. Phosphate starvation induced OsPHR4 mediates Pi-signaling and homeostasis in rice[J]. Plant Molecular Biology,2017,93(3):327-340 [7] XU Y J,LIU F,HAN G M,et al. Genome-wide identification and comparative analysis of phosphate starvation-responsive transcription factors in maize and three other gramineous plants[J]. Plant Cell Reports,2018,37(5):711-726 [8] WANG Q,DU W K,ZHANG S X,et al. Functional study and elite haplotype identification of soybean phosphate starvation response transcription factors GmPHR14 and GmPHR32[J]. Molecular Breeding,2022,42(5):29 [9] BUSTOS R,CASTRILLO G,LINHARES F,et al. A central regulatory system largely controls transcriptional activation and repression responses to phosphate starvation in Arabidopsis[J]. PLos Genetics,2010,6(9):e1001102 [10] ZHANG J L,JIANG F F,SHEN Y X,et al. Transcriptome analysis reveals candidate genes related to phosphorus starvation tolerance in Sorghum[J]. BMC Plant Biology,2019,19(1):306 [11] SHI J C,ZHAO B Y,ZHENG S,et al. A phosphate starvation response-centered network regulates mycorrhizal symbiosis[J]. Cell,2021,184(22):5527-5540 [12] DAS D,PARIES M,HOBECKER K,et al. PHOSPHATE STARVATION RESPONSE transcription factors enable arbuscular mycorrhiza symbiosis[J]. Nature Communications,2022,13(1):477 [13] WANG P,ZHONG Y N,LI Y,et al. The phosphate starvation response regulator PHR2 antagonizes arbuscule maintenance in Medicago[J]. New Phytologist,2024,244(5):1979-1993 [14] LIAO D H,SUN C,LIANG H Y,et al. SlSPX1-SlPHR complexes mediate the suppression of arbuscular mycorrhizal symbiosis by phosphate repletion in tomato[J]. The Plant Cell,2022,34(10):4045-4065 [15] DAUD Z,MOHD HATTA M Z,MOHD KASSIM A S,et al. Analysis of Napier grass (Pennisetum purpureum) as a potential alternative fibre in paper industry[J]. Materials Research Innovations,2014,18(sup6):6-18 [16] LOTFY S M,MOSTAFA A Z. Phytoremediation of contaminated soil with cobalt and chromium[J]. Journal of Geochemical Exploration,2014,144:367-373 [17] KEBEDE G,FEYISSA F,ASSEFA G,et al. Agronomic performance,dry matter yield stability and herbage quality of Napier grass (Pennisetum purpureum (L.) Schumach) accessions in different agro-ecological zones of Ethiopia[J]. Journal of Agricultural and Crop Research,2017,5:49-65 [18] PUGA M I,POZA-CARRIÓN C,MARTINEZ-HEVIA I,et al. Recent advances in research on phosphate starvation signaling in plants[J]. Journal of Plant Research,2024,137(3):315-330 [19] LUO J J,CAI Z P,HUANG R,et al. Integrated multi-omics reveals the molecular mechanisms underlying efficient phosphorus use under phosphate deficiency in elephant grass (Pennisetum purpureum)[J]. Frontiers in Plant Science,2022,13:1069191 [20] NASR ESFAHANI M,INOUE K,NGUYEN K H,et al. Phosphate or nitrate imbalance induces stronger molecular responses than combined nutrient deprivation in roots and leaves of chickpea plants[J]. Plant,Cell & Environment,2021,44(2):574-597 [21] ZHANG S K,XIA Z Q,LI C,et al. Chromosome-scale genome assembly provides insights into speciation of allotetraploid and massive biomass accumulation of elephant grass (Pennisetum purpureum Schum.)[J]. Molecular Ecology Resources,2022,22(6):2363-2378 [22] LIU D. Root developmental responses to phosphorus nutrition[J]. Journal of Integrative Plant Biology,2021,63(6):1065-1090 [23] 刘允熙,罗佳佳,雷健,等. 柱花草磷高效种质筛选及根系形态对低磷胁迫的响应分析[J]. 草地学报,2021,29(5):876-883 [24] XU W F,ZHANG Q,YUAN W,et al. The genome evolution and low-phosphorus adaptation in white lupin[J]. Nature Communications,2020,11(1):1069 [25] 朱厚荣,郑韶爵,吕金慧,等. 假地豆响应缺磷胁迫的代谢衍生物分析[J]. 草地学报,2022,30(6):1422-1429 [26] AZEVEDO G C,CHEAVEGATTI-GIANOTTO A,NEGRI B F,et al. Multiple interval QTL mapping and searching for PSTOL1 homologs associated with root morphology,biomass accumulation and phosphorus content in maize seedlings under low-P[J]. BMC Plant Biology,2015,15:172 [27] KRÜGER M,TESTE F P,LALIBERTÉ E,et al. The rise and fall of arbuscular mycorrhizal fungal diversity during ecosystem retrogression[J]. Molecular Ecology,2015,24(19):4912-4930 [28] ANDERSON W F,DIEN B S,BRANDON S K,et al. Assessment of bermudagrass and bunch grasses as feedstock for conversion to ethanol[J]. Applied Biochemistry and Biotechnology,2008,145(1/2/3):13-21 [29] SALSE J,BOLOT S,THROUDE M,et al. Identification and characterization of shared duplications between rice and wheat provide new insight into grass genome evolution[J]. The Plant Cell,2008,20(1):11-24 [30] CASTRILLO G,TEIXEIRA P J P L,PAREDES S H,et al. Root microbiota drive direct integration of phosphate stress and immunity[J]. Nature,2017,543(7646):513-518 [31] SUN Y F,LUO W Z,JAIN A,et al. OsPHR3 affects the traits governing nitrogen homeostasis in rice[J]. BMC Plant Biology,2018,18(1):241 [32] SEGA P,PACAK A. Plant PHR transcription factors:put on A map[J]. Genes,2019,10(12):1018 [33] 齐欣,李春月,刘本松,等. 草地早熟禾Phosphate Starvation Response2基因的克隆及表达分析[J]. 草地学报,2022,30(1):29-37 [34] XU G X,GUO C C,SHAN H Y,et al. Divergence of duplicate genes in exon-intron structure[J]. Proceedings of the National Academy of Sciences of the United States of America,2012,109(4):1187-1192 [35] SUN Y F,HU Z,WANG X W,et al. Overexpression of OsPHR3 improves growth traits and facilitates nitrogen use efficiency under low phosphate condition[J]. Plant Physiology and Biochemistry,2021,166:712-722 |