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Douglas, R. J.

Publications and source records attributed to Douglas, R. J..

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Eigengene reveals invariant global spatial patterns across mouse and fish brain development

Development from a zygote to an adult organism involves complex interactions among thousands of genes. These genes exhibit highly dynamic expression across space and time. Here we report a striking simplicity amidst this complexity: Despite individual gene expression variability, the eigengene--the principal component of gene expression--exhibits an invariant global spatial pattern throughout the embryonic and post-natal stages of the mouse brain. Furthermore, the mouse pattern is observed also in the larval zebrafish, revealing that eigengene expression is conserved over 400 million years of evolution. We show that the eigengene pattern can be explained by a simple lineage model in which daughter cells gene expression is similar to that of their parent, but cannot be explained by one in which gene expression arises through local cellular signaling. The constrained lineage gives rise naturally to a global eigengene expression hierarchy that could aid in the formation of a spatial hierarchy of long-range signal gradients. We propose that lineage thus induces an address-like organization, which could have been co-opted by evolution for developmental processes that require positional information over a wide range of spatial scales, such as tissue patterning and axon navigation.

neuroscience↗

Constructive Connectomics: how neuronal axons get from here to there using gene-expression maps derived from their family trees

During brain development, billions of axons must navigate over multiple spatial scales to reach specific neuronal targets, and so build the processing circuits that generate the intelligent behavior of animals. However, the limited information capacity of the zygotic genome puts a strong constraint on how, and which, axonal routes can be encoded. We propose and validate a mechanism of development that can provide an efficient encoding of this global wiring task. The key principle, confirmed through simulation, is that basic constraints on mitoses of neural stem cells--that mitotic daughters have similar gene expression to their parent and do not stray far from one another--induce a global hierarchical map of nested regions, each marked by the expression profile of its common progenitor population. Thus, a traversal of the lineal hierarchy generates a systematic sequence of expression profiles that traces a staged route, which growth cones can follow to their remote targets. We have analyzed gene expression data of developing and adult mouse brains published by the Allen Institute for Brain Science, and found them consistent with our simulations: gene expression indeed partitions the brain into a global spatial hierarchy of nested contiguous regions that is stable at least from embryonic day 11.5 to postnatal day 56. We use this experimental data to demonstrate that our axonal guidance algorithm is able to robustly extend arbors over long distances to specific targets, and that these connections result in a qualitatively plausible connectome. We conclude that, paradoxically, cell division may be the key to uniting the neurons of the brain. Author SummaryThe embryological development of each brain installs an essentially identical communication network between its cells that is roughly as complex as that between the billions of people living on Earth. Although vast scientific resources are currently applied to identifying the final pattern of connections, the connectome, there has until now been relatively little effort to answer the fundamental question of how this complex network across billions of neurons realized through the mitotic elaboration of the initial embryonic cell. The problem is sharpened by the constraints that construction of the network is limited by the information budget of the initial genome, and that it has no pre-existing address space for placing neurons and guiding axons. We explain how Biology can solve this problem by using the family tree of neurons to install a global space of molecular addresses, which axons can use to navigate from their source neuron to its relatives. We provide experimental evidence for this familial address space in gene expression patterns of the developing mouse brain, and demonstrate through simulation that the experimentally observed address space indeed supports global navigation to produce a qualitatively plausible default connectome.

neuroscience↗