Page 194 - 《广西植物》2023年第12期
P. 194
2 3 6 0 广 西 植 物 43 卷
changes of rice in split and stratified soil cultures [J]. Plant
4 结论 Soilꎬ 248: 247-256.
HUANG PFꎬ LIU JAꎬ JIN AXꎬ et al.ꎬ 2012. Isolation and
screeningꎬ identification of phosphorus ̄solubilizing bacteria
低磷环境下马尾松对 PSB 肥不同施用方式的 in rhizosphere soil of Pinus massonuana and its phosphate ̄
响应存在显著差异ꎬ局部施用较均匀施用对马尾 degradation capacity [ J]. Chin Agric Sci Bullꎬ 28(19):
松苗木生长的促进效果更加明显ꎮ 局部施用显著 12-16. [黄鹏飞ꎬ 刘君昂ꎬ 靳爱仙ꎬ 等ꎬ 2012. 马尾松根际
土壤溶磷菌分离筛选、鉴定及其溶磷效果研究 [J]. 中国
增加了苗木根冠比ꎬ促进了马尾松根系的生长ꎬ诱
农学通报ꎬ 28(19): 12-16.]
导了根系直径 D≤1.0 mm 细根的增生发育ꎮ 苗木 KUMAR Rꎬ SHASTRI Bꎬ 2017. Role of phosphate ̄solubilizing
根系生长的差异是局部施用 PSB 肥苗木磷素吸收 microorganisms in sustainable agricultural development
量及主要生长指标较均匀施用高的重要原因ꎮ 另 [J]. Agron Environ Sustꎬ 2(13): 271-303.
LI CHꎬ ZHANG YMꎬ FENG LQꎬ et al.ꎬ 2016. Research
外ꎬ由于遗传背景不同ꎬ马尾松不同家系对施用 summary of local root fertilization and water ̄fertilizer
PSB 肥的表现有所差异ꎬ具有耐低磷种源背景的 coupling technology [J]. Gansu Agric Sci Technolꎬ (7):
22 号家系对施用解磷菌肥较敏感ꎬ其在局部处理 61-66. [李翠红ꎬ 张永茂ꎬ 冯毓琴ꎬ 等ꎬ 2016. 根系局部施
下各生长指标均显著高于另外两个家系ꎮ 该结果 肥与肥水耦合技术研究综述 [J]. 甘肃农业科技ꎬ (7):
61-66.]
可能还与解磷菌和根系在根际的互作有关ꎬ有待 LI HBꎬ MA QHꎬ LI HGꎬ et al.ꎬ 2014. Root morphological
于进一步开展施用 PSB 肥对马尾松不同家系有机 responses to localized nutrient supply differ among crop
species with contrasting root traits [ J]. Plant Soilꎬ 376:
酸分泌及土壤微生物群落影响的研究ꎮ
151-163.
LI HPꎬ GAN YNꎬ HAN QQꎬ et al.ꎬ 2022. Isolation of
phosphate solubilizing bacteria from soil of spruce forest in
参考文献: the Qilian Mountains and their growth promotion effects in
white clover [J]. Acta Agr Sinꎬ 30(4): 879-888. [李慧
ADNANE Bꎬ WISSAL Eꎬ SAID Kꎬet al.ꎬ 2021. Benefits of 萍ꎬ 甘雅楠ꎬ 韩庆庆ꎬ 等ꎬ 2022. 祁连山云杉林土壤溶磷
phosphate solubilizing bacteria on belowground crop 细菌的分离及对白三叶的促生效应 [J]. 草地学报ꎬ
performance for improved crop acquisition of phosphorus 30(4): 879-888.]
[J]. Microbiol Resꎬ 252: 126842. LI QLꎬ LI ABꎬ HUANG ZYꎬ et al.ꎬ 2022. Application of
BERGKEMPER Fꎬ SCHLER Aꎬ ENGEL Mꎬ et al.ꎬ 2016. phosphorus solubilizing microorganisms in forest soil
Phosphorus depletion in forest soils shapes bacterial ecological restoration [ J]. World For Resꎬ 35 (1): 15 -
communities towards phosphorus recycling systems [ J ]. 20. [李巧玲ꎬ 李爱博ꎬ 黄志远ꎬ 等ꎬ 2022. 解磷微生物在
Environ Microbiolꎬ 18(6): 1988-2000. 林业土壤生态修复中的应用进展 [J]. 世界林业研究ꎬ
FAN YMꎬ LI Wꎬ WEN ZMꎬ et al.ꎬ 2021. Responses of grassland 35(1): 15-20.]
community biomass and root ̄shoot ratio to nitrogen addition in LIU HKꎬ CHEN Xꎬ ZHANG MZꎬ et al.ꎬ 2020. Anatomical
different restoration years on the Loess Plateau [J]. Acta Ecol characteristics of fine roots of 11 tree species in the hilly
Sinꎬ 41(24): 9824-9835. [樊勇明ꎬ 李伟ꎬ 温仲明ꎬ 等ꎬ foothills areas in central Shandong Province and their drought
2021. 黄土区不同恢复年限草地群落生物量及根冠比对氮 resistance strategies [ J]. Sci Silv Sinꎬ 56 ( 7): 185 -
添加的响应 [J]. 生态学报ꎬ 41(24): 9824-9835.] 193. [刘洪凯ꎬ 陈旭ꎬ 张明忠ꎬ 等ꎬ 2020. 鲁中丘陵山地干
FRANSEN Bꎬ KROON HDꎬ 2001. Long ̄term disadvantages of 旱生境上 11 个树种的细根解剖特征与耐旱策略 [J]. 林
selective root placement: Root proliferation and shoot 业科学ꎬ 56(7): 185-193.]
biomass of two perennial grass species in a 2 ̄year experiment LIU YHꎬ LI XHꎬ SHENG KYꎬ et al.ꎬ 2022. Effects of
[J]. J Ecolꎬ 89: 711-722. phosphate ̄solubilizing bacteria Burkholderia ZP ̄4 and
GAO CHꎬ WANG Gꎬ DONG YZꎬ et al.ꎬ 2003. Effect of Klebsiella ZP ̄2 on soil phosphorus fraction and bacterial
phosphorus bacteria in the pot and the field [J]. J Shanxi diversity [J]. Chin J Soil Sciꎬ 53(2): 472-481. [刘耀辉ꎬ
Agric Sciꎬ (3): 40- 43. [郜春花ꎬ 王岗ꎬ 董云中ꎬ 等ꎬ 李新华ꎬ 盛可银ꎬ 等ꎬ 2022. 溶磷菌 Burkholderia ZP ̄4 和
2003. 解磷菌剂盆栽及大田施用效果 [J]. 山西农业科 Klebsiella ZP ̄2 对土壤磷素的转化及细菌多样性的影响
学ꎬ (3): 40-43.] [J]. 土壤通报ꎬ 53(2): 472-481.]
HAYAT Rꎬ ALI Sꎬ AMARA Uꎬ et al.ꎬ 2010. Soil beneficial LÜ Jꎬ PAN HXꎬ YU Cꎬ 2020. Screeningꎬ identification and
bacteria and their role in plant growth promotion: a review phosphate ̄solubilizing characteristics of phosphate ̄
[J]. Ann Microbiolꎬ 60(4): 579-598. solubilizing Paraburkholderia sp. from pinus massoniana
HE Dꎬ WAN Wꎬ 2022. Distribution of culturable phosphate ̄ rhizosphere soil [J]. Biotechnol Bullꎬ 36(9): 147 - 156.
solubilizing bacteria in soil aggregates and their potential for [吕俊ꎬ 潘 洪 祥ꎬ 于 存ꎬ 2020. 马 尾 松 根 际 溶 磷 细 菌
phosphorus acquisition [J]. Microbiol Spec: e00290-22. Paraburkholderia sp. 的 筛 选、 鉴 定 及 溶 磷 特 性 研 究
HE Yꎬ LIAO Hꎬ YAN XLꎬ 2003. Localized supply of [J]. 生物技术通报ꎬ 36(9): 147-156.]
phosphorus induces root morphological and architectural LÜ Jꎬ YU Cꎬ 2020. Screening and identification of an effect

