---
title: "How pond algae led to a Nobel and new ways to study the brain"
description: "Three researchers were honoured with the prize in physiology or medicine for revealing potential new ways to control nerve cells, and it all started with a sensible question."
type: "NewsArticle"
publisher: "Daily Maverick"
site: "https://www.dailymaverick.co.za"
section: "THE CONVERSATION"
author: "Robert Lucas"
author_url: "https://www.dailymaverick.co.za/author/robert-lucas/"
canonical_url: "https://www.dailymaverick.co.za/article/2026-10-11-how-pond-algae-led-to-a-nobel-and-new-ways-to-study-the-brain/"
published: "2026-10-11T08:24:55"
lang: "en-ZA"
word_count: 886
---

# How pond algae led to a Nobel and new ways to study the brain

> Three researchers were honoured with the prize in physiology or medicine for revealing potential new ways to control nerve cells, and it all started with a sensible question.

By Robert Lucas · Published 11 October 2026, 10:24 SAST

## Key points
- A Nobel-winning discovery began with a humble question: how does pond algae sense light and swim?
- Researchers found that channelrhodopsin opens in response to light, allowing charged particles to trigger cellular signals.
- By inserting the gene into nerve cells, scientists developed optogenetics — a way to switch precise brain circuits on and off with light.
- The technique has transformed brain research, from reactivating memories in mice to early trials exploring restored sight and treatments for Parkinson’s and epilepsy.

## Content

Scientists who worked out how to control brain cells with light have won this year’s Nobel prize in physiology or medicine. Karl Deisseroth, Peter Hegemann and Georg Nagel were honoured for their research into “light-gated ion channels and optogenetics”.

Hegemann, at Humboldt University of Berlin, and Nagel, at the University of Würzburg, wanted to understand how a tiny, single-celled alga called *Chlamydomonas* senses light. Light-sensing is not unique to animals with eyes: organisms throughout the living world use light to detect their surroundings and respond to changes in their environment.

Even single-cell organisms have proteins that respond to light. These proteins are used to move towards or away from light, generate energy and respond to the various demands of a 24-hour day.

Hegemann and Nagel [discovered](https://pubmed.ncbi.nlm.nih.gov/14615590/)that *Chlamydomonas* has a beautifully ingenious mechanism of light detection that relies on a single protein called channelrhodopsin.

Channelrhodopsin is built into the outer membrane of the algal cell. Part of the protein faces the water outside the cell and part faces the inside. The protein also contains a small molecule called retinaldehyde, which is able to absorb light.

When light hits the retinaldehyde inside channelrhodopsin, it changes shape, which makes the channelrhodopsin protein change shape too. This change opens a tiny passage through the cell membrane. Positively charged particles, including sodium, can then flow from the water outside the alga into the cell. This movement of charged particles sends a signal inside the alga that helps it to swim.

How fantastic to have solved such an interesting biological question, but why the Nobel prize in physiology or medicine? The answer lies in the way nerve cells work.

Nerve cells use the movement of charged particles (called “ions”) across their membranes to control their activity. When positively charged particles flow into a nerve cell, they can make it more active.

The researchers realised that if they could put channelrhodopsin into nerve cells, they might be able to switch those cells on simply by shining a light on them.

That is exactly what Hegemann, Nagel and the third Nobel-prize winner, Deisseroth, a psychiatrist and bioengineer at Stanford University in California, went on to do.

### Switching on nerve cells with light

The ability to control nerve cells with light is called optogenetics. It has become a powerful research tool because scientists can use it to switch specific groups of nerve cells on and off and see what happens.

First, scientists deliver the gene for channelrhodopsin to the nerve cells they want to study. The gene is usually carried into the cells by a virus that has been altered so that it cannot cause disease. The cells then make the channelrhodopsin protein, which makes them respond to light.

In animals such as mice, scientists can shine light into the brain through a thin optical fibre. When the light reaches the cells, channelrhodopsin opens and the cells become active. Nearby nerve cells that do not contain the protein are unaffected.

Light can be aimed at a very small part of the brain and switched on and off extremely quickly. This makes optogenetics a powerful way to investigate how the brain works.

For example, if scientists want to know whether a particular group of nerve cells is involved in memory, sleep, sensation or movement, they can switch those cells on with light and see what happens.

In one [experiment in 2012](https://www.nature.com/articles/nature11028), a team at the Massachusetts Institute of Technology gave mice a mild electric shock in a particular cage. They used optogenetics to tag the nerve cells in the brain’s memory centre that were active during the fear-conditioning experiment.

Days later, in a different cage, they switched those cells on with light. The mice froze in fear, as if they remembered the shock.Mice that were not shocked did not freeze, which showed that the light was reactivating a specific memory. Deisseroth was one of the study’s authors.

### Transformative work

Optogenetics has transformed scientists’ ability to investigate how the brain and nervous system work. It may also have a future as a treatment. Optogenetics is already in [early-stage clinical trials](https://www.nature.com/articles/s41591-021-01351-4) for people with retinal degeneration.

In these trials, researchers introduce light-sensitive proteins into nerve cells that remain in the retina after the cells that normally detect light – called rods and cones – have been lost. This can make surviving cells respond to light and restore some vision.

Researchers are also investigating whether optogenetics could eventually be used to treat neurological conditions, including [Parkinson’s](https://pmc.ncbi.nlm.nih.gov/articles/PMC6941740/) and [epilepsy](https://www.frontiersin.org/journals/neuroscience/articles/10.3389/fnins.2017.00663/full).

This year’s [Nobel prize](https://www.nobelprize.org/prizes/medicine/2026/press-release/) celebrates work that started with a question that may sound esoteric: how do *Chlamydomonas* swim toward light? This question has no obvious practical importance. It doesn’t address an urgent need in human health, nor is it a clear route to riches.

The success of optogenetics is an illustration of the importance of continuing to ask questions simply to understand the world around us, because it’s impossible to predict where knowledge will take us. **DM**

This article was first published by The Conversation. Read the original article [here](https://theconversation.com/how-pond-algae-led-to-a-nobel-prize-and-a-new-way-to-study-the-brain-293579).

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