Area of research
Molecular Biology · Computer Networks and Communications
Research interest
Research interests include Gene Regulatory Network Analysis, Nonlinear Dynamics and Pattern Formation, Granular flow and fluidized beds, and Chaos control and synchronization.
Enhanced cellular longevity arising from environmental fluctuations
Phenotypic Patterning through Copy Number Adaptation to Environmental Gradients.
Engineering longevity—design of a synthetic gene oscillator to slow cellular aging
Engineering longevity-design of a synthetic gene oscillator to slow cellular aging.
Quantifying dynamic pro-inflammatory gene expression and heterogeneity in single macrophage cells
Statistical theory of asymmetric damage segregation in clonal cell populations
Quantifying dynamic pro-inflammatory gene expression and heterogeneity in single macrophage cells
Age-dependent aggregation of ribosomal RNA-binding proteins links deterioration in chromatin stability with challenges to proteostasis.
Age-dependent aggregation of ribosomal RNA-binding proteins links deterioration in chromatin stability with challenges to proteostasis
Author response: Age-dependent aggregation of ribosomal RNA-binding proteins links deterioration in chromatin stability with challenges to proteostasis
Age-dependent aggregation of ribosomal RNA-binding proteins links deterioration in chromatin stability with loss of proteostasis
A programmable fate decision landscape underlies single-cell aging in yeast
A programmable fate decision landscape underlies single-cell aging in yeast.
Flower-like patterns in multi-species bacterial colonies.
Genetically engineered control of phenotypic structure in microbial colonies.
Optimal transcriptional regulation of cellular responses to sudden environmental shifts
Rock-paper-scissors: Engineered population dynamics increase genetic stability
Rock-paper-scissors: Engineered population dynamics increase genetic stability.
Divergent Aging of Isogenic Yeast Cells Revealed through Single-Cell Phenotypic Dynamics
Flower-like patterns in multi-species biofilms
Author response: Flower-like patterns in multi-species bacterial colonies
Engineered phenotype patterns in microbial populations
Rational engineering of synthetic microbial systems: from single cells to consortia
Species-Independent Attraction to Biofilms through Electrical Signaling
A stabilized microbial ecosystem of self-limiting bacteria using synthetic quorum-regulated lysis
Inter-species population dynamics enhance microbial horizontal gene transfer and spread of antibiotic resistance
Rapid and Scalable Preparation of Bacterial Lysates for Cell-Free Gene Expression
Multigenerational silencing dynamics control cell aging
Synchronized cycles of bacterial lysis for in vivo delivery
Transcriptional regulation with CRISPR-Cas9: principles, advances, and applications