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Gazing through the crystal ball of science-cardiovascular disease in 2100

Fishman, G I; Levin, R I
Recently, we had the opportunity to review the progress that has been made in the field of cardiovascular disease over the past century in The FASEB Journal and, based on those thoughts, in this article we predict what may transpire inthis 'century of biology'. Although it is true that 'the best way to predict the future is to invent it', we gaze through the prism of modern biomolecular science for a vision of a possible future and see cardiology practice that is transformed. In the second half of the 20th century, we developed a more fundamental understanding of atherosclerotic vascular disorders and invented life-saving therapeutics. We saw a similar development of mechanism-based pharmacotherapy to address heart failure, primarily through agents that antagonize the excessive concentration of circulating neurohumoral agents. Now we are in the midst of the device era, from stents to cardiac resynchronization therapy to transcatheter valves.The next wave of treatments will build on an increasingly sophisticated understanding of the molecular determinants of cardiovascular disorders and engineering feats that are barely perceptible now. Genomic profiling, molecular prescriptions for prevention and personalized therapeutics, regenerative medicine and the new field of cardiovascular tissue bioengineering will transform cardiovascular medicine. If the human species can survive threats of our own doing, such as the related epidemics of obesity and diabetes, by the turn of the next century, treatment of cardiovascular disease will not resemble the present in almost any way. Touch Medical Media 2012
EMBASE:2013169454
ISSN: 1758-3896
CID: 287912

Myocardial notch signaling reprograms cardiomyocytes to a conduction-like phenotype

Rentschler, Stacey; Yen, Alberta H; Lu, Jia; Petrenko, Nataliya B; Lu, Min Min; Manderfield, Lauren J; Patel, Vickas V; Fishman, Glenn I; Epstein, Jonathan A
BACKGROUND: Notch signaling has previously been shown to play an essential role in regulating cell fate decisions and differentiation during cardiogenesis in many systems including Drosophila, Xenopus, and mammals. We hypothesized that Notch may also be involved in directing the progressive lineage restriction of cardiomyocytes into specialized conduction cells. METHODS AND RESULTS: In hearts where Notch signaling is activated within the myocardium from early development onward, Notch promotes a conduction-like phenotype based on ectopic expression of conduction system-specific genes and cell autonomous changes in electrophysiology. With the use of an in vitro assay to activate Notch in newborn cardiomyocytes, we observed global changes in the transcriptome, and in action potential characteristics, consistent with reprogramming to a conduction-like phenotype. CONCLUSIONS: Notch can instruct the differentiation of chamber cardiac progenitors into specialized conduction-like cells. Plasticity remains in late-stage cardiomyocytes, which has potential implications for engineering of specialized cardiovascular tissues.
PMCID:3607542
PMID: 22837163
ISSN: 0009-7322
CID: 178140

Characterization of gap junction proteins in the bladder of cx43 mutant mouse models of oculodentodigital dysplasia

Lorentz, R; Shao, Q; Huang, T; Fishman, G I; Laird, D W
Oculodentodigital dysplasia (ODDD) is a rare developmental disease resulting from germline mutations in the GJA1 gene that encodes the gap junction protein connexin43 (Cx43). In addition to the classical ODDD symptoms that affect the eyes, teeth, bone and digits, in some cases ODDD patients have reported bladder impairments. Thus, we chose to characterize the bladder in mutant mouse models of ODDD that harbor two distinct Cx43 mutations, G60S and I130T. Histological assessment revealed no difference in bladder detrusor wall thickness in mutant compared to littermate control mice. The overall localization of Cx43 in the lamina propria and detrusor also appeared to be similar in the bladders of mutant mice with the exception that the G60S mice had more instances of intracellular Cx43. However, both mutant mouse lines exhibited a significant reduction in the phosphorylated P1 and P2 isoforms of Cx43, while only the I130T mice exhibited a reduction in total Cx43 levels. Interestingly, Cx26 levels and distribution were not altered in mutant mice as it was localized to intracellular compartments and restricted to the basal cell layers of the urothelium. Our studies suggest that these two distinct genetically modified mouse models of ODDD probably mimic patients who lack bladder defects or other factors, such as aging or co-morbidities, are necessary to reveal a bladder phenotype.
PMCID:3726213
PMID: 22752022
ISSN: 0022-2631
CID: 174567

Connexin43 cardiac gap junction remodeling: lessons from genetically engineered murine models

Remo, Benjamin F; Giovannone, Steven; Fishman, Glenn I
Sudden cardiac death is responsible for several hundred thousand deaths each year in the United States. Multiple lines of evidence suggest that perturbation of gap junction expression and function in the heart, or what has come to be known as cardiac gap junction remodeling, plays a key mechanistic role in the pathophysiology of clinically significant cardiac arrhythmias. Here we review recent studies from our laboratory using genetically engineered murine models to explore mechanisms implicated in pathologic gap junction remodeling and their proarrhythmic consequences, with a particular focus on aberrant posttranslational phosphorylation of connexin43.
PMCID:3630470
PMID: 22722763
ISSN: 0022-2631
CID: 174076

Connexin-43 in the osteogenic BM niche regulates its cellular composition and the bidirectional traffic of hematopoietic stem cells and progenitors

Gonzalez-Nieto, Daniel; Li, Lina; Kohler, Anja; Ghiaur, Gabriel; Ishikawa, Eri; Sengupta, Amitava; Madhu, Malav; Arnett, Jorden L; Santho, Rebecca A; Dunn, Susan K; Fishman, Glenn I; Gutstein, David E; Civitelli, Roberto; Barrio, Luis C; Gunzer, Matthias; Cancelas, Jose A
Connexin-43 (Cx43), a gap junction protein involved in control of cell proliferation, differentiation and migration, has been suggested to have a role in hematopoiesis. Cx43 is highly expressed in osteoblasts and osteogenic progenitors (OB/P). To elucidate the biologic function of Cx43 in the hematopoietic microenvironment (HM) and its influence in hematopoietic stem cell (HSC) activity, we studied the hematopoietic function in an in vivo model of constitutive deficiency of Cx43 in OB/P. The deficiency of Cx43 in OB/P cells does not impair the steady state hematopoiesis, but disrupts the directional trafficking of HSC/progenitors (Ps) between the bone marrow (BM) and peripheral blood (PB). OB/P Cx43 is a crucial positive regulator of transstromal migration and homing of both HSCs and progenitors in an irradiated microenvironment. However, OB/P Cx43 deficiency in nonmyeloablated animals does not result in a homing defect but induces increased endosteal lodging and decreased mobilization of HSC/Ps associated with proliferation and expansion of Cxcl12-secreting mesenchymal/osteolineage cells in the BM HM in vivo. Cx43 controls the cellular content of the BM osteogenic microenvironment and is required for homing of HSC/Ps in myeloablated animals.
PMCID:3369607
PMID: 22498741
ISSN: 0006-4971
CID: 170679

Channeling diversity: Gap junction expression in the heart

Giovannone, Steven; Remo, Benjamin F; Fishman, Glenn I
PMCID:3359396
PMID: 22120127
ISSN: 1547-5271
CID: 170413

Forever young: induced pluripotent stem cells as models of inherited arrhythmias

Park, David S; Fishman, Glenn I
PMCID:3630473
PMID: 22647977
ISSN: 0009-7322
CID: 170424

Connexin-43 prevents hematopoietic stem cell senescence through transfer of reactive oxygen species to bone marrow stromal cells

Taniguchi Ishikawa, Eri; Gonzalez-Nieto, Daniel; Ghiaur, Gabriel; Dunn, Susan K; Ficker, Ashley M; Murali, Bhuvana; Madhu, Malav; Gutstein, David E; Fishman, Glenn I; Barrio, Luis C; Cancelas, Jose A
Hematopoietic stem cell (HSC) aging has become a concern in chemotherapy of older patients. Humoral and paracrine signals from the bone marrow (BM) hematopoietic microenvironment (HM) control HSC activity during regenerative hematopoiesis. Connexin-43 (Cx43), a connexin constituent of gap junctions (GJs) is expressed in HSCs, down-regulated during differentiation, and postulated to be a self-renewal gene. Our studies, however, reveal that hematopoietic-specific Cx43 deficiency does not result in significant long-term competitive repopulation deficiency. Instead, hematopoietic Cx43 (H-Cx43) deficiency delays hematopoietic recovery after myeloablation with 5-fluorouracil (5-FU). 5-FU-treated H-Cx43-deficient HSC and progenitors (HSC/P) cells display decreased survival and fail to enter the cell cycle to proliferate. Cell cycle quiescence is associated with down-regulation of cyclin D1, up-regulation of the cyclin-dependent kinase inhibitors, p21(cip1.) and p16(INK4a), and Forkhead transcriptional factor 1 (Foxo1), and activation of p38 mitogen-activated protein kinase (MAPK), indicating that H-Cx43-deficient HSCs are prone to senescence. The mechanism of increased senescence in H-Cx43-deficient HSC/P cells depends on their inability to transfer reactive oxygen species (ROS) to the HM, leading to accumulation of ROS within HSCs. In vivo antioxidant administration prevents the defective hematopoietic regeneration, as well as exogenous expression of Cx43 in HSC/P cells. Furthermore, ROS transfer from HSC/P cells to BM stromal cells is also rescued by reexpression of Cx43 in HSC/P. Finally, the deficiency of Cx43 in the HM phenocopies the hematopoietic defect in vivo. These results indicate that Cx43 exerts a protective role and regulates the HSC/P ROS content through ROS transfer to the HM, resulting in HSC protection during stress hematopoietic regeneration.
PMCID:3384185
PMID: 22611193
ISSN: 0027-8424
CID: 169558

Executive Summary from the First Annual Heart Rhythm Society Research Forum: A Vision for Our Research Future, "Dream, Discover, Develop, Deliver" [Editorial]

Albert, C M; Chen, P -S; Anderson, M E; Cain, M E; Fishman, G I; Narayan, S M; Olgin, J E; Spooner, P M; Stevenson, W G; Van, Wagoner D R; Packer, D L
EMBASE:2010069517
ISSN: 1556-3871
CID: 4710922

Full report from the first annual Heart Rhythm Society Research Forum: a vision for our research future, "dream, discover, develop, deliver"

Albert, Christine M; Chen, Peng-Sheng; Anderson, Mark E; Cain, Michael E; Fishman, Glenn I; Narayan, Sanjiv M; Olgin, Jeffrey E; Spooner, Peter M; Stevenson, William G; Van Wagoner, David R; Packer, Douglas L
PMCID:3726207
PMID: 22079558
ISSN: 1547-5271
CID: 347282