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Showing posts with label plant. Show all posts
Showing posts with label plant. Show all posts

Wednesday, March 25, 2015

Sit Down with Sabin: Henrik Scheller: Customizing plants for biofuels.




Uploaded on Aug 10, 2011
Henrik Scheller from the JBEI appeared on August 3rd, 2011 for this installment of "Sit Down with Sabin," a conversation in which former reporter Sabin Russell chats with Lab staff about innovative science. They will discuss "Customizing plants for biofuels." During this series of conversations, Russell and Lab staff will explore the ups and downs of pioneering science, all without the aid of PowerPoints.

Tags: genetic engineering, feedstock, mutant, mutation, acetic acid,

Tuesday, March 20, 2012

Mutated Plants May Be Better for Biofuels

Ames Lab, ISU chemists aid study of mutated plants that may be better for biofuels

Genetic mutations to cellulose in plants could improve the conversion of cellulosic biomass into biofuels, according to a research team that included an Ames Laboratory scientist.
The team recently published its findings in the online early edition of the Proceedings of the National Academy of Sciences. Mei Hong, an Iowa State professor of chemistry and an associate of the U.S. Department of Energy's Ames Laboratory, and Tuo Wang, an Iowa State graduate student in chemistry, contributed their expertise in solid-state nuclear magnetic resonance spectroscopy to the study.
For the full Iowa State University news release, click here.

Wednesday, March 14, 2012

News Release from GE

14 March 2012
GE Upgrade Project to Expand Output, Increase Efficiency at Progress Energy Plant
 

  • Upgrade to Increase Site Output by 16 Megawatts
  • Project to Deliver Combined Cycle Efficiency Improvement of 1 Percent

RALEIGH, N.C.—March 14, 2012—An advanced technology upgrade of two GE (NYSE: GE) gas turbines at a Progress Energy power plant in the Smith Energy Complex will help the site continue meeting growing energy demands through increased output, greater efficiency and lower emissions.

GE will upgrade two GE Frame 7FA Gas Turbines, which have been operating on natural gas since 2002, with compressor and combustion system enhancements as well as GE’s new Advanced Gas Path to improve the site’s output by 16 megawatts and fuel efficiency by more than 1 percent. GE expects the upgrades to extend the plant’s parts life and increase the time between scheduled outages. GE’s new Advanced Gas Path solution for the 7FA expands gas turbine output and heat rate performance through both material and design innovations.

More than 750 GE Frame 7FA Gas Turbines are in operation worldwide and have been proven in more than 25 million hours of service. The 7FA fleet accounts for 15 percent of North America’s installed electrical capacity.

“This project has been a close collaboration between Progress Energy and GE to identify a solution that will deliver higher levels of performance to the Richmond County site without sacrificing operational flexibility or reliability,” said James A. Kaveney, general manager of GE Energy’s Power Generation Services Americas group.

The site’s upgrade package also includes dry low NO(DLN) combustion technology designed to lower emissions while saving water. GE DLN combustors are equipped on more than 650 7FA Gas Turbines with more than 20 million fired hours.

GE also will install an Enhanced Transient Stability application at the Smith Energy Complex. This advanced controls solution will help protect the plant against grid instability. By minimizing the effect of grid transients, the power plant can see higher up time and provide critical power during this time period. This controls based solution can be installed during a typical hot gas path or major inspection.

The enhancement project is scheduled to be completed by October 2012.

Progress Energy (NYSE: PGN), a Fortune 500 energy company based in Raleigh, is implementing a coal-to-natural gas fleet modernization plan aimed at reducing emissions and fuel costs while providing reliable, affordable electric service to 1.5 million Carolina households and businesses. 

Monday, January 16, 2012

Insight into Biochemical Balance Needed for Plant Growth

Study Offers Insight into Delicate Biochemical Balance Required for Plant Growth

Implications for producing sustainable biomass, biofuels, and food-processing agents

January 13, 2012
transgenic plants
Click on the image to download a high-resolution version.Compared with control plants (left) transgenic plants with overexpression of a gene for pectin acetylesterase had altered leaf shape as well as deformed anther sacs and pollen grains. These findings imply that pectin acetyl esters are essential for normal plant growth and reproduction.

UPTON, NY — In an ongoing effort to understand how modifying plant cell walls might affect the production of biomass and its breakdown for use in biofuels, scientists at the U.S. Department of Energy’s (DOE) Brookhaven National Laboratory have uncovered a delicate biochemical balance essential for sustainable plant growth and reproduction. Their research on pectin, a sugary component of plant cell walls commonly used as a gelling and stabilizing agent in foods, might also suggest new ways to improve its properties for industrial and food applications.

The research findings appear online in the journal The Plant Cell.

“Pectin is the most structurally complex polysaccharide (sugar) component of plant cell walls, and is mainly associated with cell walls that form in fast-growing tissues that are important for plant growth and development,” said Brookhaven biologist Chang-Jun (C.J.) Liu, lead author of the paper. “Our aim was to understand how small molecules, such as acetyl esters, that commonly bind to the sugar backbone affect pectin’s structure and its biological and biophysical properties.”

By analyzing gene sequences available for poplar, a dedicated bioenergy crop and common experimental plant species, they isolated and characterized a gene encoding what they thought might be an enzyme able to split acetyl esters from the pectin in cell walls. Biochemical experiments revealed that this enzyme, which they named pectin acetylesterase, was indeed able to specifically liberate the acetyl ester from cell wall pectins.
They then inserted the gene into tobacco, another experimental plant, to see what effects “disturbing” the acetyl esters would have on pectin in a growing plant, and examined the consequences for plant growth and biomass digestibility.

They used a laser scanning confocal microscope at Brookhaven’s Center for Functional Nanomaterials (CFN) to identify where the enzyme, fused with a green fluorescent protein, was being expressed within the plant cells. Studies using a form of infrared microspectroscopy at the National Synchrotron Light Source (NSLS), aided by collaborator Lisa A. Miller, allowed them to precisely monitor the changes in chemical composition of the plant cell walls.

The findings were dramatic: Removing acetyl esters from pectin drastically impaired the ability of cell walls to elongate with dire consequences for plant growth.

CJ Liu
Click on the image to download a high-resolution version.Chang-Jun (C.J.) Liu

“During plant growth, cell-wall components are constantly changed or remodeled, thus enabling the plant cells to continuously expand, build their biomass, and become bigger and taller,” Liu explained. In many fast-growing plant tissues, the major cell wall component is pectin. So disrupting pectin by expressing the pectin acetylesterase gene severely impeded cell growth.

“The most dramatic case that we observed was that removing the acetyl esters retarded the germination of pollen grains and the growth of pollen tubes. Eventually, the plants were completely sterile, unable to produce seeds,” Liu said.

Equally dramatic — but unexpected — was the effect on biomass digestibility.

“Previously, many in vitro studies had demonstrated that acetylesters on the polysaccharide backbone of cell walls act as a physical barrier, preventing the breakdown of cell-wall polysaccharides,” Liu said. Consequently the scientists thought that removing those acetyl esters might be helpful for enzymatic digestion of cell-wall biomass, therefore facilitating the production of biofuels.

“In contrast, we found that reducing acetyl moieties from pectin actually impairs its digestibility, making it more difficult to break down with digestive enzymes,” Liu said. “This suggests that precise acetylation patterns in cell-wall polysaccharides — at least for pectin — are required for the action of the digestive enzymes in breaking down those cell-wall polymers.”

Understanding the details of this delicate biochemical balance will be essential as attempts are made to manipulate plants to maintain the sustainability of plant biomass and improve cell wall biomass digestibility for applications such as biofuel production.

Though not the direct focus of Liu’s research, the current findings might also offer insight into a more delectable aspect of “digestion” — the application of pectin as a food-processing agent. According to Liu, altering acetyl ester content in pectin can dramatically affect its properties, such as solubility and its ability to form gels (as in jellies and jams). “Therefore, characterization of this pectin-specific deacetylase provides a valuable molecular tool to manipulate pectin properties for improving applications in industry and food processing,” he said.

This research was funded by the DOE Office of Science and the National Science Foundation.