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Caroline M. Jakuba

Tufts University

Publishes on Pluripotent Stem Cells Research, Single-cell and spatial transcriptomics, 3D Printing in Biomedical Research. 10 papers and 3.7k citations.

10Publications
3.7kTotal Citations

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Conditional inactivation of<i>Has2</i>reveals a crucial role for hyaluronan in skeletal growth, patterning, chondrocyte maturation and joint formation in the developing limb
Kazu Matsumoto, Yingcui Li, Caroline M. Jakuba et al.|Development|2009
Cited by 148Open Access

The glycosaminoglycan hyaluronan (HA) is a structural component of extracellular matrices and also interacts with cell surface receptors to directly influence cell behavior. To explore functions of HA in limb skeletal development, we conditionally inactivated the gene for HA synthase 2, Has2, in limb bud mesoderm using mice that harbor a floxed allele of Has2 and mice carrying a limb mesoderm-specific Prx1-Cre transgene. The skeletal elements of Has2-deficient limbs are severely shortened, indicating that HA is essential for normal longitudinal growth of all limb skeletal elements. Proximal phalanges are duplicated in Has2 mutant limbs indicating an involvement of HA in patterning specific portions of the digits. The growth plates of Has2-deficient skeletal elements are severely abnormal and disorganized, with a decrease in the deposition of aggrecan in the matrix and a disruption in normal columnar cellular relationships. Furthermore, there is a striking reduction in the number of hypertrophic chondrocytes and in the expression domains of markers of hypertrophic differentiation in the mutant growth plates, indicating that HA is necessary for the normal progression of chondrocyte maturation. In addition, secondary ossification centers do not form in the central regions of Has2 mutant growth plates owing to a failure of hypertrophic differentiation. In addition to skeletal defects, the formation of synovial joint cavities is defective in Has2-deficient limbs. Taken together, our results demonstrate that HA has a crucial role in skeletal growth, patterning, chondrocyte maturation and synovial joint formation in the developing limb.

ES Cell Cycle Progression and Differentiation Require the Action of the Histone Methyltransferase Dot1L
Cited by 81Open Access

Mouse embryonic stem cells (ESCs) proliferate with rapid cell cycle kinetics but without loss of pluripotency. The histone methyltransferase Dot1L is responsible for methylation of histone H3 at lysine 79 (H3K79me). We investigated whether ESCs require Dot1L for proper stem cell behavior. ESCs deficient in Dot1L tolerate a nearly complete loss of H3K79 methylation without a substantial impact on proliferation or morphology. However, shortly after differentiation is induced, Dot1L-deficient cells cease proliferating and arrest in G2/M-phase of the cell cycle, with increased levels of aneuploidy. In addition, many aberrant mitotic spindles occur in Dot1L-deficient cells. Surprisingly, these mitotic and cell cycle defects fail to trigger apoptosis, indicating that mouse ESCs lack stringent cell cycle checkpoint control during initial stages of differentiation. Transcriptome analysis indicates that Dot1L deficiency causes the misregulation of a select set of genes, including many with known roles in cell cycle control and cellular proliferation as well as markers of endoderm differentiation. The data indicate a requirement for Dot1L function for early stages of ESC differentiation where Dot1L is necessary for faithful execution of mitosis and proper transcription of many genes throughout the genome.

Single-cell transcript analysis of human embryonic stem cells
Jason D. Gibson, Caroline M. Jakuba, Nathalie Boucher et al.|Integrative Biology|2009
Cited by 31

We demonstrate the qualitative and quantitative power of single-cell transcript analysis to characterize transcriptome dynamics in human embryonic stem cells (hESC's). Single-cell analysis can systematically determine unique cellular profiles for use in cell sorting and identification, show the potential to augment standing models of cellular differentiation, and elucidate the behavior of stem cells exiting pluripotency. Using single-cell analysis of H9 hESC's differentiating under three culture conditions, we revealed transient expression of mesendodermal markers in all three protocols, followed by increasingly stable expression of embryonic endoderm and extra-embryonic endoderm markers. Our single-cell profiles reveal mixed populations of cell types, with both transcriptional and temporal heterogeneity marking differentiation under all conditions. Interestingly, we also observe extensive and prolonged co-expression of markers regulating both pluripotency and lineage differentiation in all culture conditions, and we find that pluripotency marker transcripts remain detectable in the majority of cells for many days. Finally, we show that cells derived from undifferentiated hESC colonies display consistent gene expression profiles characterized by three cohorts of transcripts: uniform, absent and sporadically detected messages, and that a striking correlation exists between genes' membership in these cohorts and their hESC promoter chromatin state, with bivalent promoters dominating the sporadic transcripts.

Characterization of Transcript Levels for Matrix Molecules and Proteases in Ruptured Human Anterior Cruciate Ligaments
Diah S. Bramono, John C. Richmond, Paul P. Weitzel et al.|Connective Tissue Research|2005
Cited by 27

An improved understanding of cellular responses during normal anterior cruciate ligament (ACL) function or repair is essential for clinical assessments, understanding ligament biology, and the implementation of tissue engineering strategies. The present study utilized quantitative real-time RT-PCR combined with univariate and multivariate statistical analyses to establish a quantitative database of marker transcript expression that can provide a "blueprint" of ACL wound healing. Selected markers (collagen types I and III, biglycan, decorin, MMP-1, MMP-2, MMP-9, and TIMP-1) were assessed from 33 torn ACLs harvested during reconstructive surgery. Trends were observed between postinjury period and marker expressions. Significant correlations between marker expression existed and were most prominent between collagen types I and III. Canonical correlation analysis established a relationship between patient demographics and a combination of all marker expressions. The currently observed trends and correlations may assist in identifying appropriate tissue samples and provide a baseline information of marker expression level that can support in vitro optimization of environmental cues for ligament tissue engineering application.