PubMed Health⌕ Search

Biomedical subjects

Zhenghao Xu

Publications and source records attributed to Zhenghao Xu.

6 recordsLinked to original sources

[Molecular mechanisms of plant resistance to cadmium toxicity].

Cadmium (Cd) is a non-essential trace element for plants, and has strong toxicity at low concentrations. It can suppress the elongation growth of plant cell, inhibit oxidative mitochondrial phosphorylation, induce oxidative stress, inhibit the activities of several antioxidative enzymes, affect photosynthesis by inhibiting ferrous reductase or damaging photosynthesis apparatus, and cause the alteration of chromatin and the change of plasma membrane ATPase activity. In response to Cd stress, the cells of cadmium-resistant plant species can produce a number of proteins such as phytochelatins, metallothioneins and stress proteins to detoxify Cd ions, and efficiently repair Cd damage. The plant cells can also resort to other defense systems to detoxify Cd ions, e.g., the immobilization of Cd by cell wall, exclusion of Cd through the action of plasma membrane, compartmentalization of Cd by vacuolar, and release of plant glands. The phytochelatin synthase (PCS) genes of Arabidopsin, wheat and Schizosaccharomyces pombe had been identified by using different approaches, and the metallothioneins (MT) in plants was also identified recently. By introducing animal MT genes, transgenic plants could increase the resistant ability to Cd toxicity. Subjected to Cd, plant cells often start to synthesize stress proteins such as heat shock proteins, and the plants having been transformed the stress protein genes could enhance their resistant capacity to Cd ions. It was reported that zinc (Zn) ion-transporting proteins could also transport Cd ion. Some minor genes not conferring tolerance on their own could modify the major gene (s), and enhance Cd tolerance. Cd detoxification in wild type plants could be a complex phenomenon, probably under polygenic control to Cd, while acute Cd stress seemed to be a simpler mechanism, apparently involving only one or a few specific major genes.

Aminoacyltransferases↗

[Inhibitory effects of allelopathic rice materials on Echinochloa crus-galli and related field weeds].

By using the modified relay seeding technique, more than 10 allelopathic rice materials were obtained from 500 rice germplasm, and their allelopathic inhibitory effects on weeds were evaluated under field condition. The results showed that under direct-seeded condition, the allelopathic rice materials Gumei 2, Xiayitiao, Jizaoxian, Ganzaoxian and Shangnuo 1 had more obvious inhibitory effects on Echinochloa crus-galli than non-allelopathic rice materials Xiushui 63 and Chunjiang 11, while the allelopathic rice material Milyang 54 had the best inhibitory effect on field weeds. Under field-transplanting condition, the allelopathic rice materials Gumei 2, Qingkun 1, Xiayitiao and Jizaoxian had significant inhibitory effects on Echinochloa crus-galli over non-allelopathic materials Xiushui 63 and Chunjiang 11. There existed significant differences in some agronomic characters among rice materials. Allelopathic rice materials Xiayitiao and Jizaoxian had higher plant height and stronger tillering activity, but had smaller leaf areas of the 3 upper leaves.

Biomass↗

[Interference of allelopathic rice cultivars on barnyardgrass under different water irrigation and rice plant density].

Pot culture experiments were conducted to examine the effects of water irrigation and rice plant density on the interference of allelopathic rice on barnyardgrass (Echinochloa crus-galli). The results showed that under water irrigations, allelopathic rice cultivars Xiayitiao, Gumei 2 and Zhong 156 significantly reduced the plant height of barnyardgrass than non-allelopathic rice cultivars Xiushui 63 and Chunjiang 11. Barnyardgrass plants grew shorter as rice plant density increased. Allelopathic rice cultivars Jizaoxian and Gumei 2 interfered with barnyardgrass, even at their densities as low as 4 plants per pot, and the interference reduced plant height of barnyardgrass significantly compared with the non-rice control. Allelopathic rice cultivars Xiayitiao, Jizaoxian, PI312777, TN1, Gumei 2 and Zhong 156 at 32 rice plants per pot inhibited the growth of barnyardgrass significantly than Chunjiang 11.

Echinochloa↗

[Rice allelopathy to barnyardgrass].

138 rice (Oryza sativa) germplasms were identified to study the allelopathy to barnyardgrass (Echinochloa crusgalli), using the relay seeding technique. The results showed that Qingkun 2 from Jiangxi Province, Xiayitiao from Jiangsu Province, Jizaoxian from Anhui Province, Ganzaoxian 37 from Jiangxi Province, Shangnuo 1, IR68465-2-3-2 from IRRI, and Shuiyuan 2 from Korea had a strongly excellent inhibition effect on barnyardgrass. Results from pot culture showed that Gumei 2 and Zhong 156 had a greater inhibitory effect than control, and allelopathic material TN1 had no significantly inhibition effect, compared to non-allelopathic material Xiushui 63. The effect of Zhong 156 was related to its plant height, and significant different from that of Xiushui 63. Gumei 2 had a stronger inhibition effect on barnyardgrass, due to its own allelopathic trait.

Echinochloa↗

[Molecular biological study on the action mechanism of rice allelochemicals against weeds].

Rice allelopathy is implemented through its release of allelochemicals to environment. Many researchers considered that rice allelochemicals were phenolics. The action mechanisms of rice against weeds allelochemicals included the inhibition of seed germination and emergence, the effect on the balance of hormones, the damage on the integrity of cell membrane systems, the effect on photosynthesis and respiration, the disturbance of nutrient and water uptake and the effect on the protein synthesis and gene expression. Rice allelopathy is controlled by polygenes, and inherited quantitatively. Several QTLs were identified by the methods of molecular biological techniques and allelopathic bioassay. It might be the important research work to locate the QTLs accurately and to clone the allelopathic genes with the method of marker-assisted selection and the near isogenic lines.

Cloning, Molecular↗

[Genes mapping on rice allelopathy against barnyardgrass].

By using the relay seeding technique with slight modification, a population of 134 recombinant inbred lines (RILs) derived from a cross between indica rice (Oryza sativa L.) cultivar Zhong 156 x Gumei 2 and contained 168 DNA markers covering all 12 chromosomes with 1447.9 cM spans was employed to evaluate the rice allelopathic effect on barnyardgrass [Echinochloa crus-galli (I.) Beauv.]. The phenotyping values of the biomass of barnyardgrass infested with rice materials were employed to map the genes of allelopathic activity on barnyardgrass. One main effect of QTL on 7 chromosomes was identified, which explained 32.30% of the phenotypic variation. Six pairs of digenic epistatic loci were also detected, which collectively explained 47.83% of the phenotypic variation. The main QTL and epistatic loci totally explained 80.13% of the phenotypic variation of allelopathic activity.

Biomass↗