生物技术通报 ›› 2026, Vol. 42 ›› Issue (9): 157-168.doi: 10.13560/j.cnki.biotech.bull.1985.2025-1396
• 植物发育生物学专题 • 上一篇
桑志鹏1, 侯栋1,2(
), 王慧婷1, 岳宏忠2, 李亚莉2, 颉建明1, 路雯3, 许照泰4
收稿日期:2025-12-21
出版日期:2026-09-26
发布日期:2026-09-16
通讯作者:
侯栋houdong215@163.com基金资助:
SANG Zhi-peng1, HOU Dong1,2(
), WANG Hui-ting1, YUE Hong-zhong2, LI Ya-li2, XIE Jian-ming1, LU Wen3, XU Zhao-tai4
Received:2025-12-21
Published:2026-09-26
Online:2026-09-16
摘要:
目的 探究黄瓜(Cucumis sativus L.)己糖激酶(CsHXKs)基因家族成员序列特征及表达规律,并验证CsHKL1.2在黄瓜花器官糖积累中的作用,为黄瓜花器官糖代谢调控及品质育种提供理论依据与基因资源。 方法 对黄瓜CsHXKs进行系统鉴定及生物信息学分析;基于RT-qPCR技术检测不同组织和花器官不同部位及非生物胁迫下CsHXKs的表达情况;利用亚细胞定位和基因沉默(virus-induced gene silencing, VIGS)技术验证候选基因的位置和功能。 结果 黄瓜CsHXKs家族包含6个成员,分布于4条染色体,编码蛋白长度为371‒547个氨基酸,分子量为40.4‒59.6 kD。系统进化分析将其分为6个亚类,同一亚类成员具有相似的基因结构和保守基序。CsHXKs具有光响应、低温、干旱、激素及防御相关顺式作用元件。在非生物胁迫下,CsHXKs基因呈现显著的诱导表达。CsHXK3和CsHKL3基因在根中高表达,CsHXK1/2、CsHKL1.1/1.2基因在花中特异表达,其中CsHKL1.2在雄花蜜腺中表达量最高。CsHKL1.2定位于叶绿体。沉默CsHKL1.2后,花器官的花药、雄花蜜腺、柱头、雌花蜜腺、子房等部位中的葡萄糖、果糖、蔗糖含量显著升高,其可溶性酸性转化酶、细胞质中性转化酶、磷酸果糖激酶、蔗糖合成酶、蔗糖磷酸合成酶、己糖激酶的酶活性明显下调。 结论 黄瓜CsHXKs不同成员可能具有不同的生物学功能,其中CsHKL1.2通过调控糖代谢相关酶活性参与花器官糖积累,初步验证了CsHKL1.2在黄瓜花器官糖代谢中的功能。
桑志鹏, 侯栋, 王慧婷, 岳宏忠, 李亚莉, 颉建明, 路雯, 许照泰. 黄瓜CsHXKs基因家族鉴定及CsHKL1.2调控花器官糖积累[J]. 生物技术通报, 2026, 42(9): 157-168.
SANG Zhi-peng, HOU Dong, WANG Hui-ting, YUE Hong-zhong, LI Ya-li, XIE Jian-ming, LU Wen, XU Zhao-tai. Identification of the Cucumber CsHXKs Gene Family and Regulation of Floral Organ Sugar Accumulation by CsHKL1.2[J]. Biotechnology Bulletin, 2026, 42(9): 157-168.
| 基因IDGene ID | 基因名称Gene name | 氨基酸数 Amino acid number | 分子量 Molecular weight (Da) | 等电点pI | 不稳定指数 Instability index | 脂肪系数 Aliphatic index | 总平均亲水性 Grand average of hydropathicity |
|---|---|---|---|---|---|---|---|
| CsaV3_2G001860.1 | CsHXK1 | 547 | 59 630.97 | 6.46 | 26.92 | 99.31 | -0.007 |
| CsaV3_1G039830.1 | CsHXK2 | 498 | 54 226.37 | 6.00 | 34.78 | 92.03 | -0.070 |
| CsaV3_3G045830.1 | CsHXK3 | 488 | 52 745.49 | 5.91 | 39.63 | 93.52 | -0.007 |
| CsaV3_6G039140.1 | CsHKL1.1 | 502 | 54 631.98 | 7.15 | 41.49 | 99.76 | 0.022 |
| CsaV3_1G043010.1 | CsHKL1.2 | 371 | 40 373.18 | 5.16 | 41.80 | 95.96 | -0.012 |
| CsaV3_6G044550.1 | CsHKL3 | 500 | 54 756.22 | 5.77 | 36.65 | 89.72 | -0.142 |
表1 HXK蛋白的理化性质分析
Table 1 Physicochemical property analysis of HXK proteins
| 基因IDGene ID | 基因名称Gene name | 氨基酸数 Amino acid number | 分子量 Molecular weight (Da) | 等电点pI | 不稳定指数 Instability index | 脂肪系数 Aliphatic index | 总平均亲水性 Grand average of hydropathicity |
|---|---|---|---|---|---|---|---|
| CsaV3_2G001860.1 | CsHXK1 | 547 | 59 630.97 | 6.46 | 26.92 | 99.31 | -0.007 |
| CsaV3_1G039830.1 | CsHXK2 | 498 | 54 226.37 | 6.00 | 34.78 | 92.03 | -0.070 |
| CsaV3_3G045830.1 | CsHXK3 | 488 | 52 745.49 | 5.91 | 39.63 | 93.52 | -0.007 |
| CsaV3_6G039140.1 | CsHKL1.1 | 502 | 54 631.98 | 7.15 | 41.49 | 99.76 | 0.022 |
| CsaV3_1G043010.1 | CsHKL1.2 | 371 | 40 373.18 | 5.16 | 41.80 | 95.96 | -0.012 |
| CsaV3_6G044550.1 | CsHKL3 | 500 | 54 756.22 | 5.77 | 36.65 | 89.72 | -0.142 |
图1 黄瓜CsHXKs基因家族成员染色体定位(A)、基因结构(B)和保守基序分析(C)
Fig. 1 Chromosomal localization (A), gene structure (B) and conserved motif analysis (C) of the CsHXKs gene family in cucumber
图2 CsHXKs基因家族系统进化树与共线性分析A:水稻(Os)、拟南芥(At)、黄瓜(Cs)、南瓜(Cmo)、甜瓜(Cm)、西瓜(Ci)和西葫芦(Cp)的HXK家族基因的系统进化树分析,红色五角星表示黄瓜CsHXKs家族成员;B:黄瓜基因组内共线性分析;C:黄瓜、拟南芥和水稻之间的共线性分析
Fig. 2 Phylogenetic tree and collinearity analysis of the CsHXKs gene familyA: Phylogenetic analysis of HXK family genes from Oryza sativa (Os), Arabidopsis thaliana (At), Cucumis sativus (Cs), Cucurbita moschata (Cmo), Cucumis melo (Cm), Citrullus lanatus (Ci) and Cucurbita pepo (Cp), red pentagrams indicate members of the CsHXKs gene family in cucumber. B: Collinearity analysis within the cucumber genome. C: Collinearity analysis among cucumber (C. sativus), A. thaliana and Oryza sativa
图4 黄瓜CsHXKs家族基因在不同组织器官中的表达A:植株不同组织;B:花器官不同部位;热图中的高度代表其在所有组织中的百分比
Fig. 4 Expressions of CsHXKs family genes in different tissues and organs of cucumberA: Different tissues of the plant. B: Different parts of floral organs. In the heatmap, the height indicates the percentage or proportion of each target in all tissues
图5 黄瓜CsHXKs基因家族在非生物胁迫下的表达特性分析A:干旱胁迫;B:盐胁迫;C:低温胁迫;不同小写字母表示差异显著(P<0.05),误差线代表标准差(SD),n=3,下同
Fig. 5 Expression characterization analysis of the CsHXKs gene family in Cucumis sativus under abiotic stressesA: Drought stress. B: Salt stress. C: Low-temperature stress. Different lowercase letters indicate significant differences (P<0.05), error bars indicate the standard deviation (SD), n=3, the same below
图7 CsHKL1.2的沉默效率以及沉默后对花不同部位糖含量的影响A:沉默效率;B:葡萄糖;C:果糖;D:蔗糖;*P<0.05,**P<0.01,***P<0.001,****P<0.000 1,ns表示差异不显著(P>0.05),下同
Fig. 7 Silencing efficiency of CsHKL1.2 and its effects on the sugar content in different floral tissues after silencingA: Silencing efficiency. B: Glucose. C: Fructose. D: Sucrose; *P<0.05, **P<0.01, ***P<0.001, ****P<0.000 1, ns indicates no significant difference (P>0.05). The same below
图8 沉默CsHKL1.2对黄瓜花不同部位糖代谢相关酶活性的影响A:可溶性酸性转化酶;B:细胞质中性转化酶;C:磷酸果糖激酶;D:蔗糖合成酶(分解方向);E:蔗糖合成酶(合成方向);F:蔗糖磷酸合成酶;G:己糖激酶
Fig. 8 Effects of CsHKL1.2 silencing on the activities of sugar metabolism-related enzymes in different floral parts of cucumberA: Soluble acid invertase. B: Cytoplasmic neutral invertase. C: Phosphofructokinase. D: Sucrose synthase (cleavage direction). E: Sucrose synthase (synthesis direction). F: Sucrose phosphate synthase. G: Hexokinase
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