Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Roberto Iacone is active.

Publication


Featured researches published by Roberto Iacone.


Cell Stem Cell | 2009

A genome-scale RNAi screen for Oct4 modulators defines a role of the Paf1 complex for embryonic stem cell identity.

Li Ding; Maciej Paszkowski-Rogacz; Anja Nitzsche; Mikolaj Slabicki; Anne Kristin Heninger; Ingrid de Vries; Ralf Kittler; Magno Junqueira; Andrej Shevchenko; Herbert Schulz; Norbert Hubner; Michael Xavier Doss; Agapios Sachinidis; Juergen Hescheler; Roberto Iacone; Konstantinos Anastassiadis; A. Francis Stewart; M. Teresa Pisabarro; Antonio Caldarelli; Ina Poser; Mirko Theis; Frank Buchholz

Pluripotent embryonic stem cells (ESCs) maintain self-renewal while ensuring a rapid response to differentiation cues. The identification of genes maintaining ESC identity is important to develop these cells for their potential therapeutic use. Here we report a genome-scale RNAi screen for a global survey of genes affecting ESC identity via alteration of Oct4 expression. Factors with the strongest effect on Oct4 expression included components of the Paf1 complex, a protein complex associated with RNA polymerase II. Using a combination of proteomics, expression profiling, and chromatin immunoprecipitation, we demonstrate that the Paf1C binds to promoters of key pluripotency genes, where it is required to maintain a transcriptionally active chromatin structure. The Paf1C is developmentally regulated and blocks ESC differentiation upon overexpression, and the knockdown in ESCs causes expression changes similar to Oct4 or Nanog depletions. We propose that the Paf1C plays an important role in maintaining ESC identity.


Nature Cell Biology | 2015

Generation of vascular endothelial and smooth muscle cells from human pluripotent stem cells.

Christoph Patsch; Ludivine Challet-Meylan; Eva C. Thoma; Eduard Urich; Tobias Heckel; John O’Sullivan; Stephanie Grainger; Friedrich G. Kapp; Lin Sun; Klaus Christensen; Yulei Xia; Mary H.C. Florido; Wei He; Wei Pan; Michael Prummer; Curtis R. Warren; Roland Jakob-Roetne; Ulrich Certa; Ravi Jagasia; Per-Ola Freskgård; Isaac Adatto; Dorothee Kling; Paul L. Huang; Leonard I. Zon; Elliot L. Chaikof; Robert E. Gerszten; Martin Graf; Roberto Iacone; Chad A. Cowan

The use of human pluripotent stem cells for in vitro disease modelling and clinical applications requires protocols that convert these cells into relevant adult cell types. Here, we report the rapid and efficient differentiation of human pluripotent stem cells into vascular endothelial and smooth muscle cells. We found that GSK3 inhibition and BMP4 treatment rapidly committed pluripotent cells to a mesodermal fate and subsequent exposure to VEGF-A or PDGF-BB resulted in the differentiation of either endothelial or vascular smooth muscle cells, respectively. Both protocols produced mature cells with efficiencies exceeding 80% within six days. On purification to 99% via surface markers, endothelial cells maintained their identity, as assessed by marker gene expression, and showed relevant in vitro and in vivo functionality. Global transcriptional and metabolomic analyses confirmed that the cells closely resembled their in vivo counterparts. Our results suggest that these cells could be used to faithfully model human disease.


Stem Cell Research | 2013

A short G1 phase is an intrinsic determinant of naïve embryonic stem cell pluripotency

Diana Coronado; Pierre-Yves Bourillot; Yann Tapponnier; Agnieszka Bernat; Maxime Petit; Marielle Afanassieff; Suzy Markossian; Anna Malashicheva; Roberto Iacone; Konstantinos Anastassiadis; Pierre Savatier

A short G1 phase is a characteristic feature of mouse embryonic stem cells (ESCs). To determine if there is a causal relationship between G1 phase restriction and pluripotency, we made use of the Fluorescence Ubiquitination Cell Cycle Indicator (FUCCI) reporter system to FACS-sort ESCs in the different cell cycle phases. Hence, the G1 phase cells appeared to be more susceptible to differentiation, particularly when ESCs self-renewed in the naïve state of pluripotency. Transitions from ground to naïve, then from naïve to primed states of pluripotency were associated with increased durations of the G1 phase, and cyclin E-mediated alteration of the G1/S transition altered the balance between self-renewal and differentiation. LIF withdrawal resulted in a lengthening of the G1 phase in naïve ESCs, which occurred prior to the appearance of early lineage-specific markers, and could be reversed upon LIF supplementation. We concluded that the short G1 phase observed in murine ESCs was a determinant of naïve pluripotency and was partially under the control of LIF signaling.


Cell Reports | 2014

Disease Modeling and Phenotypic Drug Screening for Diabetic Cardiomyopathy using Human Induced Pluripotent Stem Cells

Faye Drawnel; Stefano Boccardo; Michael Prummer; Frédéric Delobel; Alexandra Graff; Michael Weber; Régine Gérard; Laura Badi; Tony Kam-Thong; Lei Bu; Xin Jiang; Jean-Christophe Hoflack; Anna Kiialainen; Elena Jeworutzki; Natsuyo Aoyama; Coby B. Carlson; Mark Burcin; Gianni Gromo; Markus Boehringer; Henning Stahlberg; Benjamin J. Hall; Maria Chiara Magnone; Kyle Kolaja; Kenneth R. Chien; Jacques Bailly; Roberto Iacone

Diabetic cardiomyopathy is a complication of type 2 diabetes, with known contributions of lifestyle and genetics. We develop environmentally and genetically driven in vitro models of the condition using human-induced-pluripotent-stem-cell-derived cardiomyocytes. First, we mimic diabetic clinical chemistry to induce a phenotypic surrogate of diabetic cardiomyopathy, observing structural and functional disarray. Next, we consider genetic effects by deriving cardiomyocytes from two diabetic patients with variable disease progression. The cardiomyopathic phenotype is recapitulated in the patient-specific cells basally, with a severity dependent on their original clinical status. These models are incorporated into successive levels of a screening platform, identifying drugs that preserve cardiomyocyte phenotype in vitro during diabetic stress. In this work, we present a patient-specific induced pluripotent stem cell (iPSC) model of a complex metabolic condition, showing the power of this technique for discovery and testing of therapeutic strategies for a disease with ever-increasing clinical significance.


Scientific Reports | 2013

Multicellular Self-Assembled Spheroidal Model of the Blood Brain Barrier

Eduard Urich; Christoph Patsch; Stefan Aigner; Martin Graf; Roberto Iacone; Per-Ola Freskgård

The blood brain barrier (BBB) has evolved unique characteristics such as dense coverage of the endothelial cells by pericytes and interactions with astrocytes through perivascular endfeet. We study BBB formation in a 3-dimensional multicellular spheroid system of human primary brain endothelial cells (hpBECs), primary pericytes (hpPs) and primary astrocytes (hpAs). We show for the first time that hpBECs, hpPs and hpAs spontaneously self-organize into a defined multicellular structure which recapitulates the complex arrangement of the individual cell types in the BBB structure. Pericytes play a crucial role mediating the interaction between hpBECs and hpAs. This process is not dependent on a scaffold support demonstrating that formation and cellular architecture of the BBB is intrinsically programmed within each specific cell type. In a matrigel setup the hpBECs, hpPs and hpAs also undergo self-arrangement to form endothelial tube-like structures tightly covered by hpPs and loosely attached hpAs mainly at the junctions.


Stem cell reports | 2014

Chemical Conversion of Human Fibroblasts into Functional Schwann Cells

Eva C. Thoma; Claudia Merkl; Tobias Heckel; Rachel Haab; Frédéric Knoflach; Corinne Nowaczyk; Nicholas Flint; Ravi Jagasia; Sannah Jensen Zoffmann; Hoa Hue Truong; Pascal Petitjean; Sebastian Jessberger; Martin Graf; Roberto Iacone

Summary Direct transdifferentiation of somatic cells is a promising approach to obtain patient-specific cells for numerous applications. However, conversion across germ-layer borders often requires ectopic gene expression with unpredictable side effects. Here, we present a gene-free approach that allows efficient conversion of human fibroblasts via a transient progenitor stage into Schwann cells, the major glial cell type of peripheral nerves. Using a multikinase inhibitor, we transdifferentiated fibroblasts into transient neural precursors that were subsequently further differentiated into Schwann cells. The resulting induced Schwann cells (iSCs) expressed numerous Schwann cell-specific proteins and displayed neurosupportive and myelination capacity in vitro. Thus, we established a strategy to obtain mature Schwann cells from human postnatal fibroblasts under chemically defined conditions without the introduction of ectopic genes.


Stem Cell Research | 2016

Generation of functional podocytes from human induced pluripotent stem cells

Osele Ciampi; Roberto Iacone; Lorena Longaretti; Valentina Benedetti; Martin Graf; Maria Chiara Magnone; Christoph Patsch; Christodoulos Xinaris; Giuseppe Remuzzi; Ariela Benigni; Susanna Tomasoni

Generating human podocytes in vitro could offer a unique opportunity to study human diseases. Here, we describe a simple and efficient protocol for obtaining functional podocytes in vitro from human induced pluripotent stem cells. Cells were exposed to a three-step protocol, which induced their differentiation into intermediate mesoderm, then into nephron progenitors and, finally, into mature podocytes. After differentiation, cells expressed the main podocyte markers, such as synaptopodin, WT1, α-Actinin-4, P-cadherin and nephrin at the protein and mRNA level, and showed the low proliferation rate typical of mature podocytes. Exposure to Angiotensin II significantly decreased the expression of podocyte genes and cells underwent cytoskeleton rearrangement. Cells were able to internalize albumin and self-assembled into chimeric 3D structures in combination with dissociated embryonic mouse kidney cells. Overall, these findings demonstrate the establishment of a robust protocol that, mimicking developmental stages, makes it possible to derive functional podocytes in vitro.


Stem Cell Research | 2014

Nanog induces hyperplasia without initiating tumors

Gerrit Fischedick; Guangming Wu; Kenjiro Adachi; Marcos J. Araúzo-Bravo; Boris Greber; Martina Radstaak; Gabriele Köhler; Natalia Tapia; Roberto Iacone; Konstantinos Anastassiadis; Hans R. Schöler; Holm Zaehres

Though expression of the homeobox transcription factor Nanog is generally restricted to pluripotent cells and early germ cells, many contradictory reports about Nanogs involvement in tumorigenesis exist. To address this, a modified Tet-On system was utilized to generate Nanog-inducible mice. Following prolonged Nanog expression, phenotypic alterations were found to be restricted to the intestinal tract, leaving other major organs unaffected. Intestinal and colonic epithelium hyperplasia was observed-intestinal villi had doubled in length and hyperplastic epithelium outgrowths were seen after 7days. Increased proliferation of crypt cells and downregulation of the tumor suppressors Cdx2 and Klf4 was detected. ChIP analysis showed physical interaction of Nanog with the Cdx2 and Klf4 promoters, indicating a regulatory conservation from embryonic development. Despite downregulation of tumor suppressors and increased proliferation, ectopic Nanog expression did not lead to tumor formation. We conclude that unlike other pluripotency-related transcription factors, Nanog cannot be considered an oncogene.


EBioMedicine | 2017

HtrA1 Mediated Intracellular Effects on Tubulin Using a Polarized RPE Disease Model

Esther Melo; Philipp Oertle; Carolyn Mary Trepp; Hélène Meistermann; Thomas Burgoyne; Lorenzo Sborgi; Alvaro Cortes Cabrera; Chia-yi Chen; Jean-Christophe Hoflack; Tony Kam-Thong; Roland Schmucki; Laura Badi; Nicholas Flint; Zeynep Eren Ghiani; Frédéric Delobel; Corinne Stucki; Giulia Gromo; Alfred Einhaus; Benoit Hornsperger; Sabrina Golling; Juliane Siebourg-Polster; Francoise Gerber; Bernd Bohrmann; Clare E. Futter; Tom Dunkley; Sebastian Hiller; Oliver Schilling; Volker Enzmann; Sascha Fauser; Marija Plodinec

Age-related macular degeneration (AMD) is the leading cause of irreversible vision loss. The protein HtrA1 is enriched in retinal pigment epithelial (RPE) cells isolated from AMD patients and in drusen deposits. However, it is poorly understood how increased levels of HtrA1 affect the physiological function of the RPE at the intracellular level. Here, we developed hfRPE (human fetal retinal pigment epithelial) cell culture model where cells fully differentiated into a polarized functional monolayer. In this model, we fine-tuned the cellular levels of HtrA1 by targeted overexpression. Our data show that HtrA1 enzymatic activity leads to intracellular degradation of tubulin with a corresponding reduction in the number of microtubules, and consequently to an altered mechanical cell phenotype. HtrA1 overexpression further leads to impaired apical processes and decreased phagocytosis, an essential function for photoreceptor survival. These cellular alterations correlate with the AMD phenotype and thus highlight HtrA1 as an intracellular target for therapeutic interventions towards AMD treatment.


Matrix Biology | 2018

N-Terminomics identifies HtrA1 cleavage of thrombospondin-1 with generation of a proangiogenic fragment in the polarized retinal pigment epithelial cell model of age-related macular degeneration

Chia-yi Chen; Esther Melo; Peter Jakob; Arno Friedlein; Brigitta Elsässer; Peter Goettig; Verena Kueppers; Frédéric Delobel; Corinne Stucki; Tom Dunkley; Sascha Fauser; Oliver Schilling; Roberto Iacone

Age-related macular degeneration (AMD) is the leading cause of irreversible blindness in the elderly population. Variants in the HTRA1-ARMS2 locus have been linked to increased AMD risk. In the present study we investigated the impact of elevated HtrA1 levels on the retina pigment epithelial (RPE) secretome using a polarized culture system. Upregulation of HtrA1 alters the abundance of key proteins involved in angiogenesis and extracellular matrix remodeling. Thrombospondin-1, an angiogenesis modulator, was identified as a substrate for HtrA1 using terminal amine isotope labeling of substrates in conjunction with HtrA1 specificity profiling. HtrA1 cleavage of thrombospondin-1 was further corroborated by in vitro cleavage assays and targeted proteomics together with small molecule inhibition of HtrA1. While thrombospondin-1 is anti-angiogenic, the proteolytically released N-terminal fragment promotes the formation of tube-like structure by endothelial cells. Taken together, our findings suggest a mechanism by which increased levels of HtrA1 may contribute to AMD pathogenesis. The proteomic data has been deposited to the ProteomeXchange Consortium via the PRIDE partner repository with the data set identifier. For quantitative secretome analysis, project accession: PXD007691, username: [email protected], password: 1FUpS6Yq. For TAILS analysis, project accession: PXD007139, username: [email protected], password: sNbMp7xK.

Collaboration


Dive into the Roberto Iacone's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Konstantinos Anastassiadis

Dresden University of Technology

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge