Tampilkan postingan dengan label lemnaceae. Tampilkan semua postingan
Tampilkan postingan dengan label lemnaceae. Tampilkan semua postingan

Minggu, 08 Mei 2016

CCRES Algae Astaxanthin

Astaxanthins ability to scavenge free radicals in your body* is up to...

    550 times more powerful than vitamin E
    65 times more powerful than vitamin C
    54 times more powerful than beta-carotene
    5 times more powerful than lutein

CCRES ALGAE

It does this by quenching a molecule called singlet oxygen - a harmful reactive oxygen species formed through normal biological processes occurring in your body.* Singlet oxygen possesses a high amount of excess energy that must be released to keep it from damaging other cells.

CCRES Lab

Astaxanthin absorbs this energy and dissipates it as heat, thereby returning the singlet oxygen to a grounded state.*

Theres another way, too, that astaxanthin helps to protect cells, organs and tissues against oxidative damage from free radicals.*

CCRES Algae Astaxanthin

It traps free radicals at both ends of the molecule.* Once captured, the potentially harmful free radicals pass into cellular fluids where they become neutralized by vitamin C. In this way, astaxanthin is sometimes considered a ‘booster for other antioxidants like vitamins A, C and E.*


Whats more, astaxanthin cant act as a potentially detrimental “pro-oxidant” like some of the other carotenoids such as beta-carotene, lycopene, and zeaxanthin.


CCRES CO2

    Support your joint health, flexibility, and mobility*
    Support a healthy immune response*
    Support your central nervous system*
    Support your cardiovascular system*
    Support your brain and eye health due to its unique ability to cross blood-brain and blood-retina barriers*

CCRES ALGAE PROJECT
part of 
Croatian Center of Renewable Energy Sources (CCRES)

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Senin, 04 April 2016


The Lemnaceae, commonly known as duckweeds, are the smallest, fastest growing and simplest of flowering plants. Some of the current uses of Lemnaceae are a testimony to its utility: basic research and evolutionary model system, toxicity testing organism, biotech protein factory, wastewater remediator, high-protein animal feed, and carbon cycling participant. Sequencing of the Greater Duckweed, Spirodela polyrhiza (L.) Schleiden, which has a genome size similar to that of Arabidopsis (150 MB), will address challenges in alternative energy, bioremediation, and global carbon cycling. 

duckweed in a flask
Duckweed photo courtesy Todd Michael.

With the passage of the 2005 Federal Energy legislation, the drive to develop sustainable feedstocks and processing protocols for biofuel production has intensified. The search for new biomass species has revealed the potential of Lemnaceae species. These plants produce biomass faster than any other flowering plant. The carbohydrate content of the plant material also indicates a potential for ethanol production. Moreover, the carbohydrate in duckweed biomass is readily converted to fermentable sugars by using commercially available enzymes developed for corn-based ethanol production.
The utility of Lemnaceae species for bioremediation has long been recognized as well. Propagated on agricultural and municipal wastewater, Spirodela and related species efficiently extract excess nitrogen and phosphate pollutants. Duckweed growth on ponds effectively reduces algal growth (by shading), coliform bacterial counts, suspended solids, evaporation, biological oxygen demand, and mosquito larvae while maintaining pH, concentrating heavy metals, sequestering or degrading halogenated organic and phenolic compounds, and encouraging the growth of other aquatic animals such as frogs and fowl.
A better understanding of Lemnaceae species could also reveal the potential for their role in the global carbon cycle. Primitive aquatic plants have been implicated as the primary source of carbon sequestration that drove global climate change during the Early Eocene. The S. polyrhiza genome sequence could unlock the remarkable potential of a rapidly growing aquatic plant for carbon sequestration, carbon cycling, and biofuel production.

CCRES ALGAE
part of
Croatian Center of Renewable Energy Sources (CCRES)
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Sabtu, 02 April 2016




New ways to turn photosynthetic green algae into tiny “green factories” for producing raw materials for alternative fuels.

Overturning two long-held misconceptions about oil production in algae, scientists at the U.S. Department of Energy’s Brookhaven National Laboratory show that ramping up the microbes’ overall metabolism by feeding them more carbon increases oil production as the organisms continue to grow. The findings — published online in the journal Plant and Cell Physiology on May 28, 2012 — may point to new ways to turn photosynthetic green algae into tiny “green factories” for producing raw materials for alternative fuels.

“We are interested in algae because they grow very quickly and can efficiently convert carbon dioxide into carbon-chain molecules like starch and oils,” said Brookhaven biologist Changcheng Xu, the paper’s lead author. With eight times the energy density of starch, algal oil in particular could be an ideal raw material for making biodiesel and other renewable fuels.

But there have been some problems turning microscopic algae into oil producing factories.

For one thing, when the tiny microbes take in carbon dioxide for photosynthesis, they preferentially convert the carbon into starch rather than oils. “Normally, algae produce very little oil,” Xu said.

Before the current research, the only way scientists knew to tip the balance in favor of oil production was to starve the algae of certain key nutrients, like nitrogen. Oil output would increase, but the algae would stop growing — not ideal conditions for continuous production.

Another issue was that scientists didn’t know much about the details of oil biochemistry in algae. “Much of what we thought we knew was inferred from studies performed on higher plants,” said Brookhaven biochemist John Shanklin, a co-author who’s conducted extensive research on plant oil production. Recent studies have hinted at big differences between the microbial algae and their more complex photosynthetic relatives.

“Our goal was to learn all we could about the factors that contribute to oil production in algae, including those that control metabolic switching between starch and oil, to see if we could shift the balance to oil production without stopping algae growth,” Xu said.

The scientists grew cultures of Chlamydomonas reinhardtii — the “fruit fly” of algae — under a variety of nutrient conditions, with and without inhibitors that would limit specific biochemical pathways. They also studied a mutant Chlamydomonas that lacks the capacity to make starch. By comparing how much oil accumulated over time in the two strains across the various conditions, they were able to learn why carbon preferentially partitions into starch rather than oil, and how to affect the process.

The main finding was that feeding the algae more carbon (in the form of acetate) quickly maxed out the production of starch to the point that any additional carbon was channeled into high-gear oil production. And, most significantly, under the excess carbon condition and without nutrient deprivation, the microbes kept growing while producing oil.

“This overturns the previously held dogma that algae growth and increased oil production are mutually exclusive,” Xu said.

The detailed studies, conducted mainly by Brookhaven research associates Jilian Fan and Chengshi Yan, showed that the amount of carbon was the key factor determining how much oil was produced: more carbon resulted in more oil; less carbon limited production. This was another surprise because a lot of approaches for increasing oil production have focused on the role of enzymes involved in producing fatty acids and oils. In this study, inhibiting enzyme production had little effect on oil output.

“This is an example of a substantial difference between algae and higher plants,” said Shanklin.

In plants, the enzymes directly involved in the oil biosynthetic pathway are the limiting factors in oil production. In algae, the limiting step is not in the oil biosynthesis itself, but further back in central metabolism.

This is not all that different from what we see in human metabolism, Xu points out: Eating more carbon-rich carbohydrates pushes our metabolism to increase oil (fat) production and storage.

“It’s kind of surprising that, in some ways, we’re more like algae than higher plants are,” Xu said, noting that scientists in other fields may be interested in the details of metabolic switching uncovered by this research.

But the next step for the Brookhaven team will be to look more closely at the differences in carbon partitioning in algae and plants. This part of the work will be led by co-author Jorg Schwender, an expert in metabolic flux studies. The team will also work to translate what they’ve learned in a model algal species into information that can help increase the yield of commercial algal strains for the production of raw materials for biofuels.

This research was funded by the DOE Office of Science and the DOE Office of Energy Efficiency and Renewable Energy.

DOE’s Office of Science is the single largest supporter of basic research in the physical sciences in the United States, and is working to address some of the most pressing challenges of our time.

CCRES 
special thanks to  
Brookhaven National Laboratory

Croatian Center of Renewable Energy Sources (CCRES)
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