Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Peizhong Zheng is active.

Publication


Featured researches published by Peizhong Zheng.


Nature Genetics | 2008

A phenylalanine in DGAT is a key determinant of oil content and composition in maize

Peizhong Zheng; William B. Allen; Keith Roesler; Mark E. Williams; Shirong Zhang; Jiming Li; Kimberly Glassman; Jerry Ranch; Douglas Nubel; William Edward Solawetz; Dinakar Bhattramakki; Victor Llaca; Stéphane Deschamps; Gan-Yuan Zhong; Mitchell C. Tarczynski; Bo Shen

Plant oil is an important renewable resource for biodiesel production and for dietary consumption by humans and livestock. Through genetic mapping of the oil trait in plants, studies have reported multiple quantitative trait loci (QTLs) with small effects, but the molecular basis of oil QTLs remains largely unknown. Here we show that a high-oil QTL (qHO6) affecting maize seed oil and oleic-acid contents encodes an acyl-CoA:diacylglycerol acyltransferase (DGAT1-2), which catalyzes the final step of oil synthesis. We further show that a phenylalanine insertion in DGAT1-2 at position 469 (F469) is responsible for the increased oil and oleic-acid contents. The DGAT1-2 allele with F469 is ancestral, whereas the allele without F469 is a more recent mutant selected by domestication or breeding. Ectopic expression of the high-oil DGAT1-2 allele increases oil and oleic-acid contents by up to 41% and 107%, respectively. This work provides insights into the molecular basis of natural variation of oil and oleic-acid contents in plants and highlights DGAT as a promising target for increasing oil and oleic-acid contents in other crops.


Plant Physiology | 2010

Expression of ZmLEC1 and ZmWRI1 Increases Seed Oil Production in Maize

Bo Shen; William B. Allen; Peizhong Zheng; Changjiang Li; Kimberly Glassman; Jerry Ranch; Douglas Nubel; Mitchell C. Tarczynski

Increasing seed oil production is a major goal for global agriculture to meet the strong demand for oil consumption by humans and for biodiesel production. Previous studies to increase oil synthesis in plants have focused mainly on manipulation of oil pathway genes. As an alternative to single-enzyme approaches, transcription factors provide an attractive solution for altering complex traits, with the caveat that transcription factors may face the challenge of undesirable pleiotropic effects. Here, we report that overexpression of maize (Zea mays) LEAFY COTYLEDON1 (ZmLEC1) increases seed oil by as much as 48% but reduces seed germination and leaf growth in maize. To uncouple oil increase from the undesirable agronomic traits, we identified a LEC1 downstream transcription factor, maize WRINKLED1 (ZmWRI1). Overexpression of ZmWRI1 results in an oil increase similar to overexpression of ZmLEC1 without affecting germination, seedling growth, or grain yield. These results emphasize the importance of field testing for developing a commercial high-oil product and highlight ZmWRI1 as a promising target for increasing oil production in crops.


The Plant Cell | 2016

Morphogenic Regulators Baby boom and Wuschel Improve Monocot Transformation

Keith S. Lowe; Emily Wu; Ning Wang; George J. Hoerster; Craig Hastings; Myeong-Je Cho; Chris Scelonge; Brian Lenderts; Mark A. Chamberlin; Josh Cushatt; Lijuan Wang; Larisa Ryan; Tanveer Khan; Julia Chow-Yiu; Wei Hua; Maryanne Yu; Jenny Banh; Zhongmeng Bao; Kent Brink; Elizabeth Igo; Bhojaraja Rudrappa; Pm Shamseer; Wes Bruce; Lisa J. Newman; Bo Shen; Peizhong Zheng; Dennis L. Bidney; Carl Falco; Jim Register; Zuo-Yu Zhao

Using the maize Bbm and Wus2 genes enhances transformation efficiency in maize and other monocots, broadens the genotype range, and permits transformation of mature seed-derived embryos and leaf segments. While transformation of the major monocot crops is currently possible, the process typically remains confined to one or two genotypes per species, often with poor agronomics, and efficiencies that place these methods beyond the reach of most academic laboratories. Here, we report a transformation approach involving overexpression of the maize (Zea mays) Baby boom (Bbm) and maize Wuschel2 (Wus2) genes, which produced high transformation frequencies in numerous previously nontransformable maize inbred lines. For example, the Pioneer inbred PHH5G is recalcitrant to biolistic and Agrobacterium tumefaciens transformation. However, when Bbm and Wus2 were expressed, transgenic calli were recovered from over 40% of the starting explants, with most producing healthy, fertile plants. Another limitation for many monocots is the intensive labor and greenhouse space required to supply immature embryos for transformation. This problem could be alleviated using alternative target tissues that could be supplied consistently with automated preparation. As a major step toward this objective, we transformed Bbm and Wus2 directly into either embryo slices from mature seed or leaf segments from seedlings in a variety of Pioneer inbred lines, routinely recovering healthy, fertile T0 plants. Finally, we demonstrated that the maize Bbm and Wus2 genes stimulate transformation in sorghum (Sorghum bicolor) immature embryos, sugarcane (Saccharum officinarum) callus, and indica rice (Oryza sativa ssp indica) callus.


Archive | 2005

Ap2 domain transcription factor odp2 (ovule development protein 2) and methods of use

William J. Gordon-Kamm; Timothy G. Helentjaris; Keith S. Lowe; Bo Shen; Mitchell C. Tarczynski; Peizhong Zheng


Archive | 2009

ODP1-2 genes and uses thereof in plants

William B. Allen; Bo Shen; Peizhong Zheng


Archive | 2011

Methods of producing maize plants having a high oil phenotype by detecting a marker locus genetically linked with a QTL6 region

William B. Allen; Bo Shen; Mitchell C. Tarczynski; Mark E. Williams; Peizhong Zheng; Gan-Yuan Zhong


Archive | 2009

AP2-DOMÄNE-TRANSKRIPTIONSFAKTOR ODP2 (OVULE DEVELOPMENT PROTEIN 2) UND VERWENDUNGSVERFAHREN

William J. Gordon-Kamm; Timothy G. Helentjaris; Keith S. Lowe; Bo Shen; Mitchell C. Tarczynski; Peizhong Zheng


Archive | 2007

Compositions apparentées au locus à effets quantitatifs 6 (qtl6) du maïs et leurs procédés d'utilisation

William B. Allen; Bo Shen; Mitchell C. Tarczynski; Mark E. Williams; Peizhong Zheng; Gan-Yuan Zhong


Archive | 2005

Facteur de transcription odp2 (ovule development protein 2) du domaine ap2 et procedes pour l'utiliser

William J. Gordon-Kamm; Timothy G. Helentjaris; Keith S. Lowe; Bo Shen; Mitchell C. Tarczynski; Peizhong Zheng


Archive | 2005

Ap2-domäne-transkriptionsfaktor odp2 (ovule development protein 2) und verwendungsverfahren Ap2-domain transcription factor-ODP2 (ovule development protein 2) and use methods

William J. Gordon-Kamm; Timothy G. Helentjaris; Keith S. Lowe; Bo Shen; Mitchell C. Tarczynski; Peizhong Zheng

Collaboration


Dive into the Peizhong Zheng's collaboration.

Top Co-Authors

Avatar

Bo Shen

University of Arizona

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Edgar B. Cahoon

United States Department of Agriculture

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Kevin G. Ripp

Washington State University

View shared research outputs
Researchain Logo
Decentralizing Knowledge