综合一区欧美国产,99国产麻豆免费精品,九九精品黄色录像,亚洲激情青青草,久久亚洲熟妇熟,中文字幕av在线播放,国产一区二区卡,九九久久国产精品,久久精品视频免费

Global EditionASIA 中文雙語(yǔ)Fran?ais
China
Home / China / Innovation

Chinese scientists reveal light utilization mechanism of major seaweed species

Xinhua | Updated: 2025-09-12 19:54
Share
Share - WeChat

BEIJING -- Chinese scientists have revealed for the first time the three-dimensional structure of the light energy utilization system of Coccolithophores, a famous photosynthetic organism, shedding light on designing new photosynthetic proteins to cope with climate change.

The research findings were published as the cover story in the journal Science on Friday.

Coccolithophores are one of the major marine phytoplankton. They are important contributors to the ocean's primary productivity, the process by which organisms convert inorganic substances into organic compounds, and play a significant role in marine carbon deposition and the global carbon cycle.

Coccolithophores can adapt to the variable light environment at different depths in seawater, and their efficient photoautotrophic growth enables them to reproduce rapidly. However, the mechanism of how their photosystem efficiently captures and utilizes light energy was unclear.

A team led by Wang Wenda and Tian Lijin from the Institute of Botany, Chinese Academy of Sciences, discovered the light-harvesting structure of this seaweed species. It consists of 38 light-harvesting antennas arranged into eight radial bands in a vortex pattern around the photosystem core, which greatly expands the light-harvesting area.

The team also identified abundant chlorophyll-c and fucoxanthin-type carotenoids in the light-harvesting antennas, which enable the antennas to efficiently absorb blue-green and green light with wavelengths between 460 and 540 nanometers in deep water.

In addition, the study found that a large amount of chlorophyll-c and chlorophyll-a form a flat and smooth energy transfer network, which may be the key to maintaining ultra-high quantum conversion efficiency.

Wang stated that the study offers a new structural model for understanding the efficient energy conversion mechanism of photosynthetic organisms.

"In the future, we expect to use the findings as a basis to design new photosynthetic proteins and further guide the artificial simulation and development of high carbon sink biological resources, which has great potential in the fields of synthetic biology and climate change response," he said.

Top
BACK TO THE TOP
English
Copyright 1994 - . All rights reserved. The content (including but not limited to text, photo, multimedia information, etc) published in this site belongs to China Daily Information Co (CDIC). Without written authorization from CDIC, such content shall not be republished or used in any form. Note: Browsers with 1024*768 or higher resolution are suggested for this site.
License for publishing multimedia online 0108263

Registration Number: 130349
FOLLOW US
 
康保县| 出国| 新巴尔虎右旗| 明光市| 古交市| 淳化县| 武宣县| 凤山县| 巴彦淖尔市| 固安县| 凯里市| 启东市| 娄底市| 高雄县| 外汇| 泉州市| 铜山县| 扬中市| 顺平县| 鄂温| 洛南县| 陕西省| 肥城市| 弋阳县| 准格尔旗| 长武县| 即墨市| 眉山市| 永和县| 永昌县| 来凤县| 三门县| 当阳市| 太保市| 襄垣县| 泰来县| 望都县| 吉首市| 平定县| 遵义县| 贵阳市|