生物技术通报 ›› 2026, Vol. 42 ›› Issue (9): 248-261.doi: 10.13560/j.cnki.biotech.bull.1985.2026-0017
• 植物发育生物学专题 • 上一篇
赵丫1, 菲若拉·帕力哈提1, 温欣荣1, 马伟3, 孙可心1, 覃书伟1, 孙宝明1, 刘悦1, 曹爱萍1,2(
)
收稿日期:2026-01-07
出版日期:2026-09-26
发布日期:2026-09-16
通讯作者:
曹爱萍caoaiping@shzu.edu.cn作者简介:第一联系人:同等贡献
基金资助:
ZHAO Ya1, FEIRUOLA Palihati1, WEN Xin-rong1, MA Wei3, SUN Ke-xin1, QIN Shu-wei1, SUN Bao-ming1, LIU Yue1, CAO Ai-ping1,2(
)
Received:2026-01-07
Published:2026-09-26
Online:2026-09-16
摘要:
目的 探究红花根际土壤中高效解磷细菌的溶磷特性及其对红花生长、有效成分积累和根际微环境的调控机制,为提升红花绿色高效栽培提供依据。 方法 以红花根际土壤为研究对象,通过无机磷选择培养基筛选优势解磷菌株C9,利用抗性菌株评估定殖能力;进一步通过生理生化特性分析、溶磷能力测定、生长曲线拟合及16S rDNA分子鉴定明确菌株特性。采用盆栽试验,以白、黄、红3种花色的红花为材料,通过灌根法施加菌肥,动态监测植株生物量、花丝主要活性成分、根际土壤理化性质及菌株促生指标。 结果 从红花根际土壤中筛选获得一株高效解磷菌株C9,经鉴定为革兰氏阴性荧光假单胞菌(Pseudomonas fluorescens)。该菌株对磷酸钙和磷酸锌表现出较强的溶解能力,其溶磷量与培养基pH值降低呈负相关。盆栽试验表明,Rif-C9菌株可稳定定殖于红花根际,显著促进白、黄、红3种花色红花的生长,其中单株有效果球数分别提高28.24%、37.36%、26.98%,并同步使3种花色花丝中羟基红花黄色素A(HSYA)和山柰酚(KF)含量分别提升51.5%、34.7%、13.4%和183.3%、300.0%、133.3%。施用Rif-C9菌肥后,根际土壤pH值降低,土壤全氮、有机质和有效磷含量分别显著增加7.64%‒18.56%、15.74%‒29.94%和4.34%‒8.32%,且菌株能够分泌生长素(IAA),协同改善根际微生态,从而驱动红花生长与有效成分的积累。 结论 荧光假单胞菌Rif-C9具有高效溶磷能力,可通过酸化根际微环境、释放可溶性磷及分泌IAA,显著促进红花生长发育、提升药用成分含量并改良土壤肥力。
赵丫, 菲若拉·帕力哈提, 温欣荣, 马伟, 孙可心, 覃书伟, 孙宝明, 刘悦, 曹爱萍. 解磷菌C9对红花生长发育和药用成分的影响[J]. 生物技术通报, 2026, 42(9): 248-261.
ZHAO Ya, FEIRUOLA Palihati, WEN Xin-rong, MA Wei, SUN Ke-xin, QIN Shu-wei, SUN Bao-ming, LIU Yue, CAO Ai-ping. Effects of Phosphate-solubilizing Bacterium C9 on the Growth, Development, and Medicinal Components of Safflower[J]. Biotechnology Bulletin, 2026, 42(9): 248-261.
| 菌株 Strain | D (cm) | d (cm) | D/d |
|---|---|---|---|
| C1 | 1.750 | 1.033 | 1.705±0.161cde |
| C2 | 2.15 | 0.783 | 2.748±0.163b |
| C3 | 1.367 | 1.133 | 1.206±0.028h |
| C4 | 1.283 | 1.117 | 1.150±0.028h |
| C5 | 1.700 | 0.950 | 1.792±0.084c |
| C6 | 1.683 | 1.000 | 1.704±0.179cde |
| C7 | 1.817 | 1.033 | 1.761±0.068cd |
| C8 | 1.883 | 1.117 | 1.691±0.095de |
| C9 | 2.183 | 0.683 | 3.198±0.095a |
| C10 | 1.250 | 0.933 | 1.341±0.045gh |
| C11 | 1.800 | 1.167 | 1.544±0.046ef |
| C12 | 1.717 | 1.150 | 1.495±0.069fg |
| C13 | 1.850 | 1.133 | 1.634±0.049de |
| C15 | 1.250 | 0.967 | 1.293±0.027gh |
表1 解磷菌可溶性指数
Table 1 Solubility index of phosphate solubilizing bacteria
| 菌株 Strain | D (cm) | d (cm) | D/d |
|---|---|---|---|
| C1 | 1.750 | 1.033 | 1.705±0.161cde |
| C2 | 2.15 | 0.783 | 2.748±0.163b |
| C3 | 1.367 | 1.133 | 1.206±0.028h |
| C4 | 1.283 | 1.117 | 1.150±0.028h |
| C5 | 1.700 | 0.950 | 1.792±0.084c |
| C6 | 1.683 | 1.000 | 1.704±0.179cde |
| C7 | 1.817 | 1.033 | 1.761±0.068cd |
| C8 | 1.883 | 1.117 | 1.691±0.095de |
| C9 | 2.183 | 0.683 | 3.198±0.095a |
| C10 | 1.250 | 0.933 | 1.341±0.045gh |
| C11 | 1.800 | 1.167 | 1.544±0.046ef |
| C12 | 1.717 | 1.150 | 1.495±0.069fg |
| C13 | 1.850 | 1.133 | 1.634±0.049de |
| C15 | 1.250 | 0.967 | 1.293±0.027gh |
图1 菌株C9和Rif-C9的形态特征A、D:解磷圈;B、E:菌落形态;C、F:革兰氏染色(100×)
Fig. 1 Morphological characteristics of strains C9 and Rif-C9A, D: Phosphate-solubilizing halo. B, E: Colony morphology. C, F: Gram staining (100×)
| 项目 Item | C9 | Rif-C9 |
|---|---|---|
| 兼性需氧 Facultative aerobic | + | + |
| 革兰氏染色 Gram staining | - | - |
| 接触酶试验 Catalase test | + | + |
| 甲基红试验 Methyl red test | - | - |
| V-P试验 V-P test | - | - |
| 脲酶试验Urease test | - | - |
| 产IAA试验 IAA production test | + | + |
| 产吲哚试验 Indole production test | - | - |
| 色氨酸脱氨酶 Tryptophan deaminase | - | - |
| 淀粉水解 Hydrolysis of starch | - | - |
| 明胶液化 Gelatin liquefaction | - | - |
| 产H2S试验 H2S production test | - | - |
表2 解磷菌株的生理生化特性
Table 2 Physiological and biochemical characteristics of phosphate-solubilizing strains
| 项目 Item | C9 | Rif-C9 |
|---|---|---|
| 兼性需氧 Facultative aerobic | + | + |
| 革兰氏染色 Gram staining | - | - |
| 接触酶试验 Catalase test | + | + |
| 甲基红试验 Methyl red test | - | - |
| V-P试验 V-P test | - | - |
| 脲酶试验Urease test | - | - |
| 产IAA试验 IAA production test | + | + |
| 产吲哚试验 Indole production test | - | - |
| 色氨酸脱氨酶 Tryptophan deaminase | - | - |
| 淀粉水解 Hydrolysis of starch | - | - |
| 明胶液化 Gelatin liquefaction | - | - |
| 产H2S试验 H2S production test | - | - |
图2 菌株C9和Rif-C9生长特征与系统发育分析A:菌株C9、Rif-C9的生长曲线;B:菌株C9系统发育树;分支节点处显示基于1 000次重复抽样、自举值>50%的支持率
Fig. 2 Growth characteristics and phylogenetic analysis of strains C9 and Rif-C9A: Growth curves of strains C9 and Rif-C9. B: Phylogenetic tree of strain C9. Bootstrap values (based on 1 000 replicates) greater than 50% are shown at the nodes
图3 不同难溶磷化合物培养液中可溶性磷含量及pH值显著性差异通过Duncan新复极差法确定;不同字母表示差异显著(P<0.05),下同
Fig. 3 Soluble phosphorus content and pH value in different insoluble phosphorus compound culture mediaSignificant differences were determined by Duncan’s new multiple range test. Different letters indicate significant differences at P<0.05. The same below
图4 菌株Rif-C9在不同花色红花根际的定殖能力W:白色;Y:黄色;R:红色。下同
Fig. 4 Colonization ability of strain Rif-C9 in the rhizosphere of safflower with different flower colorsW: White; Y: yellow; R: red. The same below
图5 菌株Rif-C9对红花生长发育的影响A‒D:分别为Rif-C9菌株接种14、28、80 d和盛花期农艺性状
Fig. 5 Impact of strain Rif-C9 on the growth and development of safflowerA‒D: Agronomic traits of safflower at 14, 28, 80 d and flowering stage after inoculation with strain Rif-C9
图6 Rif-C9菌株对3种花色红花花丝有效成分的影响A‒C:白色红花花丝形态、羟基红花黄色素A(HSYA)含量及山萘酚(KF)含量;D‒F:黄色红花花丝形态、HSYA含量及KF含量;G‒I:红色红花花丝形态、HSYA含量及KF含量;*表示显著相关(* P<0.05,** P <0.01,*** P <0.001,**** P <0.000 1)
Fig. 6 Effect of strain Rif-C9 on the active components of safflower filaments with three flower colorsA‒C: Filament morphology, hydroxysafflor yellow A (HSYA) and kaempferol (KF) contents of white safflower. D‒F: Filament morphology, HSYA and KF contents of yellow safflower. G‒I: Filament morphology, HSYA and KF contents of red safflower. * indicates significant correlation (* P<0.05, ** P<0.01, *** P<0.001, **** P<0.000 1)
图7 Rif-C9菌株对3种花色红花根际土壤理化性质的影响
Fig. 7 Effect of strain Rif-C9 on the physicochemical properties of rhizosphere soil of safflower with three flower colors
图8 解磷菌菌株培养液中可溶性磷含量及pH动态变化A:解磷菌株NBRIP培养液中可溶性磷含量动态变化;B:解磷菌株NBRIP培养液中pH动态变化;C:NBRIP培养液中可溶性磷含量与pH的线性关系;*表示显著相关(P<0.000 1)
Fig. 8 Dynamic changes in soluble phosphorus content and pH in the culture medium of phosphate-solubilizing bacterial strainsA: Dynamic changes in soluble phosphorus content in NBRIP culture medium of a phosphate-solubilizing bacterial strain. B: Dynamic changes in pH in NBRIP culture medium of a phosphate-solubilizing bacterial strain. C: Linear relationship between soluble phosphorus content and pH in NBRIP culture medium. * indicated significant correlation (P<0.000 1)
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