Abstract Background Functional constraint through genomic architecture is suggested to be an important dimension of genome evolution, but quantitative evidence for this idea is rare. In this contribution, existing evidence and discussions on genomic architecture as constraint for convergent evolution, rapid adaptation, and genic adaptation are summarized into alternative, testable hypotheses. Network architecture statistics from protein-protein interaction networks are then used to calculate differences in evolutionary outcomes on the example of genomic evolution in yeast, and the results are used to evaluate statistical support for these longstanding hypotheses. Results A discriminant function analysis lent statistical support to classifyi...
The mapping of biomolecular interactions reveals that the function of most biological components dep...
Motivation: We compare phylogenetic approaches for inferring functional gene links. The approaches d...
AbstractEvolved gene networks are constrained by natural selection. Their structures and functions a...
We assume that the functional relations that a protein engages in, influences it’s evolutionary dyna...
We assume that the functional relations that a protein engages in, influences it’s evolutionary dyna...
To understand life as biological system, evolutionary understanding is indispensable. Protein intera...
Abstract — Many biological systems can be modeled as networks. Hence, network analysis is of increas...
A long-standing and central question in evolutionary biology is the molecular genetic mechanisms of ...
A long-standing and central question in evolutionary biology is the molecular genetic mechanisms of ...
By analyzing complex biological networks, I explore the nascent field of systems biology to address ...
The evolution of new biochemical activities frequently involves complex dependencies between mutatio...
The evolution of new biochemical activities frequently involves complex dependencies between mutatio...
Abstract Background The impact of genetic interaction networks on evolution is a fundamental issue. ...
Motivation: We compare phylogenetic approaches for inferring functional gene links. The approaches d...
Motivation: We compare phylogenetic approaches for inferring functional gene links. The approaches d...
The mapping of biomolecular interactions reveals that the function of most biological components dep...
Motivation: We compare phylogenetic approaches for inferring functional gene links. The approaches d...
AbstractEvolved gene networks are constrained by natural selection. Their structures and functions a...
We assume that the functional relations that a protein engages in, influences it’s evolutionary dyna...
We assume that the functional relations that a protein engages in, influences it’s evolutionary dyna...
To understand life as biological system, evolutionary understanding is indispensable. Protein intera...
Abstract — Many biological systems can be modeled as networks. Hence, network analysis is of increas...
A long-standing and central question in evolutionary biology is the molecular genetic mechanisms of ...
A long-standing and central question in evolutionary biology is the molecular genetic mechanisms of ...
By analyzing complex biological networks, I explore the nascent field of systems biology to address ...
The evolution of new biochemical activities frequently involves complex dependencies between mutatio...
The evolution of new biochemical activities frequently involves complex dependencies between mutatio...
Abstract Background The impact of genetic interaction networks on evolution is a fundamental issue. ...
Motivation: We compare phylogenetic approaches for inferring functional gene links. The approaches d...
Motivation: We compare phylogenetic approaches for inferring functional gene links. The approaches d...
The mapping of biomolecular interactions reveals that the function of most biological components dep...
Motivation: We compare phylogenetic approaches for inferring functional gene links. The approaches d...
AbstractEvolved gene networks are constrained by natural selection. Their structures and functions a...