Completed Cells, Biochemistry & Physiology

The Biogenesis Structure and Function of Biological Membranes

In plain English

AI plain-English summary

Every year, billions of tonnes of photosynthetic bacteria in the oceans capture sunlight to power nearly all life on Earth—yet no one fully understands how they make the chlorophyll that does the work. This project addresses a fundamental gap in biology: how cells build the light-harvesting complexes (LHCs) that collect solar energy and channel it to reaction centres, which convert it into chemical fuel. Although these membranes are astonishingly efficient—delivering 99% of captured energy to the reaction centre—the assembly process inside living cells remains unknown. The researchers will use atomic force microscopy to map, molecule by molecule, how LHCs and reaction centres arrange themselves into functional networks inside bacterial membranes. By taking repeated images at different developmental stages, they aim to reveal nature’s bio-engineering blueprint. This is fundamental science. There is no immediate practical application. However, understanding how nature builds near-perfect energy-capture systems could one day inspire artificial light-harvesting devices—for example, photovoltaic cells that mimic biological efficiency. Past fundamental research on photosynthesis has already informed solar panel design; this work digs deeper into the assembly process itself.

View original technical description
Nearly all life on Earth gets the food and oxygen it needs from plants, or from simpler bacterial photosynthetic organisms that live in oceans, lakes and ponds, thus underpinning all global food chains. Because the planet Earth is largely aquatic the quantity and activity of these photosynthetic bacteria is stupendous; billions of tonnes of photosynthetic bacteria grow in the oceans every year. This unseen microbial army inhabits every sea, even growing 100 metres below the surface. Although to us these are inky depths, photosynthetic bacteria can grow and thrive because they make so much chlorophyll that they can grab hold of every photon of light that comes their way. The humble photosynthetic bacteria are the start of the major food chains that make other life in the sea possible and so feed many of us too. There is so much chlorophyll on Earth that it weighs more than all of humankind, yet despite its omnipresence and its importance to all life, astonishingly, nobody understands fully how chlorophyll is made. What is more there are millions of chlorophyll molecules inside each photosynthetic cell, which have to be attached to proteins before they collect and use energy from the sun, but again despite its crucial importance, nobody understands anything about this attachment process. We want to find out how the chlorophylls and proteins inside cells are made, and how they are put together to capture light and convert it into ATP, which powers the thousands of chemical reactions that enable the cells to grow and divide. This knowledge is important to us all, not just because capturing and using solar energy fuels life, but it also holds the secret of designing and making devices that one day could give us clean, unlimited energy from sunlight. How can we gain this knowledge? We use photosynthetic bacteria, quick and easy to grow in illuminated bottles on a laboratory benchtop, and we then open up the bacteria, take out the chlorophyll-proteins and see how they work. The chlorophyll-proteins that capture solar energy are called light-harvesting complexes (LHCs). In much the same way as a satellite dish concentrates the weak TV signal onto the receiver, thousands of LHCs are grouped side-by-side to collect solar energy and deliver it to a small number of reaction centres (RC). The RC protein converts the energy harvested by the LHCs to electrical energy, in the form of positive and negative charges on either side of a membrane, like charging up a biological battery; this drives the production of ATP, the chemical fuels for all cells. We want to know how the cell makes these membranes, so amazingly efficient that 99% of the energy that falls on them is delivered to the RC. To get such highly efficient energy collection we know that LHCs must be packed in close contact with one another in the membrane but we do not know how the cell manages to do this. To understand how such a photosynthetic membrane works we must follow the sequence of events that leads to the functional light harvesting network inside the cells. To do this we will use an atomic force microscope to literally 'feel' the shapes of each LHC and RC as the cell makes networks of them and turn this information into a 'photograph' of where everything is in the membrane. By taking repeated pictures of membranes at different stages in their development we can see how nature achieves this feat of bio-engineering. How will we use this knowledge? We all need electricity and we want to make a start on learning lessons from nature by assembling our own artificial light harvesting system and following how the energy is captured by LHCs then channeled to a RC. Can we channel this energy efficiently? Can we 'plug' our artificial light harvesting system directly into a photovoltaic cell to make electricity? By bringing together a team of scientists from Biology, Physics and Chemistry we will explore these exciting possibilities in our research.

View the original record at the funder ↗

Researchers

Christopher Hunter (Principal Investigator)Graham Leggett (Co-Investigator)John Olsen (Co-Investigator)Mark Dickman (Co-Investigator)Per Bullough (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

The functional organisation of a developing light harvesting system
3-D structures of the major components of a photosynthetic membrane
Organisation, dynamics and biogenesis of a photosynthetic membrane
Spatial dynamics of electron transport
Building Solar-Powered, Carbon-Fixing Protoalgae

Original classification

Research Grant

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.