2010e-NeuroforumOpen access

The neuronal network of the endogenous clock

Charlotte Helfrich‐Förster

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Abstract

Abstract Endogenous clocks control the rhythm of many biological processes. Malfunction of endogenous clocks in humans can lead to various diseases as sleep disorders, depres­sions, the metabolic syndrome and cancer. All animals have a main clock in the brain. This clock comprises a network of clock neurons that communicate with each other. In each clock neuron, conserved clock genes and pro­teins interact in to generate a molecular os­cillation. The molecular basis of this rhythm generation as well as the anatomy of the neuronal clock network is best investigated in the fruit fly Drosophila melanogaster. In the little fly, clock genes can be shut down in specific clock neurons. Furthermore, specific clock neurons can be electrically silenced and the rhythmic behaviour of such manipulated flies can be studied. A flurry of recent studies has begun to identify the role of specific clock neurons in the clock network, and these find­ings are helping to understand the basic neu­ronal mechanisms of endogenous clocks.

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Abstract Endogenous clocks control the rhythm of many biological processes. Malfunction of endogenous clocks in humans can lead to various diseases as sleep disorders, depres­sions, the metabolic syndrome and cancer. All animals have a main clock in the brain. This clock comprises a network of clock neurons that communicate with each other. In each clock neuron, conserved clock genes and pro­teins interact in to generate a molecular os­cillation. The molecular basis of this rhythm generation as well as the anatomy of the neuronal clock network is best investigated in the fruit fly Drosophila melanogaster. In the little fly, clock genes can be shut down in specific clock neurons. Furthermore, specific clock neurons can be electrically silenced and the rhythmic behaviour of such manipulated flies can be studied. A flurry of recent studies has begun to identify the role of specific clock neurons in the clock network, and these find­ings are helping to understand the basic neu­ronal mechanisms of endogenous clocks.

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Available abstract

Abstract Endogenous clocks control the rhythm of many biological processes. Malfunction of endogenous clocks in humans can lead to various diseases as sleep disorders, depres­sions, the metabolic syndrome and cancer. All animals have a main clock in the brain. This clock comprises a network of clock neurons that communicate with each other. In each clock neuron, conserved clock genes and pro­teins interact in to generate a molecular os­cillation. The molecular basis of this rhythm generation as well as the anatomy of the neuronal clock network is best investigated in the fruit fly Drosophila melanogaster. In the little fly, clock genes can be shut down in specific clock neurons. Furthermore, specific clock neurons can be electrically silenced and the rhythmic behaviour of such manipulated flies can be studied. A flurry of recent studies has begun to identify the role of specific clock neurons in the clock network, and these find­ings are helping to understand the basic neu­ronal mechanisms of endogenous clocks.

Key concepts: Clock network, Molecular clock, Circadian clock, Neuroscience, CLOCK, Master clock, Biology, Drosophila melanogaster

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