EDBT 2026 Demo / reviewers in the wild / expert
Hans B. Sieburg
dblp:18/888
· DBLP profile ↗
3ranked-venue papers
3as first author
0since 2021 · last 2013
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Applied, interdisciplinary, general and emerging computing · 2 · 2 first-authorArtificial intelligence and machine learning · 1 · 1 first-author
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Interdisciplinary, comprehensive, and emerging computing
1 paper |
Bioinformatics and computational biology · 100% |
Topics — the 2 heaviest of 2, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Bioinformatics and computational biology
computational physiology |
0.0 | 1 | 1993 | Testing HIV Molecular Biology In itIn Silico Physiologies · ISMB 1993 |
Bioinformatics and computational biology
molecular biology |
0.0 | 1 | 1993 | Testing HIV Molecular Biology In itIn Silico Physiologies · ISMB 1993 |
Methods — techniques the papers use, named apart from their topics
simulation · 0.0
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2013 | Lifespan Differences in Hematopoietic Stem Cells are Due to Imperfect Repair and Unstable Mean-ReversionabstractThe life-long supply of blood cells depends on the long-term function of hematopoietic stem cells (HSCs). HSCs are functionally defined by their multi-potency and self-renewal capacity. Because of their self-renewal capacity, HSCs were thought to have indefinite lifespans. However, there is increasing evidence that genetically identical HSCs differ in lifespan and that the lifespan of a HSC is predetermined and HSC-intrinsic. Lifespan is here defined as the time a HSC gives rise to all mature blood cells. This raises the intriguing question: what controls the lifespan of HSCs within the same animal, exposed to the same environment? We present here a new model based on reliability theory to account for the diversity of lifespans of HSCs. Using clonal repopulation experiments and computational-mathematical modeling, we tested how small-scale, molecular level, failures are dissipated at the HSC population level. We found that the best fit of the experimental data is provided by a model, where the repopulation failure kinetics of each HSC are largely anti-persistent, or mean-reverting, processes. Thus, failure rates repeatedly increase during population-wide division events and are counteracted and decreased by repair processes. In the long-run, a crossover from anti-persistent to persistent behavior occurs. The cross-over is due to a slow increase in the mean failure rate of self-renewal and leads to rapid clonal extinction. This suggests that the repair capacity of HSCs is self-limiting. Furthermore, we show that the lifespan of each HSC depends on the amplitudes and frequencies of fluctuations in the failure rate kinetics. Shorter and longer lived HSCs differ significantly in their pre-programmed ability to dissipate perturbations. A likely interpretation of these findings is that the lifespan of HSCs is determined by preprogrammed differences in repair capacity. Hans B. Sieburg, Giulio Cattarossi, Christa E. Müller-Sieburg |
PLoS Comput. Biol. | 1 |
| 1994 | Methods in the Virtual Wetlab I: rule-based reasoning driven by nearest-neighbor lattice dynamics
Hans B. Sieburg |
Artif. Intell. Medicine | 1 |
| 1993 | Testing HIV Molecular Biology In itIn Silico Physiologies
Hans B. Sieburg, Cristobal Baray, Kevin S. Kunzelman |
ISMB | 1 |