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Dive into the research topics where Saravana K. Ramasamy is active.

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Featured researches published by Saravana K. Ramasamy.


Nature | 2014

Coupling of angiogenesis and osteogenesis by a specific vessel subtype in bone

Anjali P. Kusumbe; Saravana K. Ramasamy; Ralf H. Adams

The mammalian skeletal system harbours a hierarchical system of mesenchymal stem cells, osteoprogenitors and osteoblasts sustaining lifelong bone formation. Osteogenesis is indispensable for the homeostatic renewal of bone as well as regenerative fracture healing, but these processes frequently decline in ageing organisms, leading to loss of bone mass and increased fracture incidence. Evidence indicates that the growth of blood vessels in bone and osteogenesis are coupled, but relatively little is known about the underlying cellular and molecular mechanisms. Here we identify a new capillary subtype in the murine skeletal system with distinct morphological, molecular and functional properties. These vessels are found in specific locations, mediate growth of the bone vasculature, generate distinct metabolic and molecular microenvironments, maintain perivascular osteoprogenitors and couple angiogenesis to osteogenesis. The abundance of these vessels and associated osteoprogenitors was strongly reduced in bone from aged animals, and pharmacological reversal of this decline allowed the restoration of bone mass.


Nature | 2014

Endothelial Notch activity promotes angiogenesis and osteogenesis in bone

Saravana K. Ramasamy; Anjali P. Kusumbe; Lin Wang; Ralf H. Adams

Blood vessel growth in the skeletal system and osteogenesis seem to be coupled, suggesting the existence of molecular crosstalk between endothelial and osteoblastic cells. Understanding the nature of the mechanisms linking angiogenesis and bone formation should be of great relevance for improved fracture healing or prevention of bone mass loss. Here we show that vascular growth in bone involves a specialized, tissue-specific form of angiogenesis. Notch signalling promotes endothelial cell proliferation and vessel growth in postnatal long bone, which is the opposite of the well-established function of Notch and its ligand Dll4 in the endothelium of other organs and tumours. Endothelial-cell-specific and inducible genetic disruption of Notch signalling in mice not only impaired bone vessel morphology and growth, but also led to reduced osteogenesis, shortening of long bones, chondrocyte defects, loss of trabeculae and decreased bone mass. On the basis of a series of genetic experiments, we conclude that skeletal defects in these mutants involved defective angiocrine release of Noggin from endothelial cells, which is positively regulated by Notch. Administration of recombinant Noggin, a secreted antagonist of bone morphogenetic proteins, restored bone growth and mineralization, chondrocyte maturation, the formation of trabeculae and osteoprogenitor numbers in endothelial-cell-specific Notch pathway mutants. These findings establish a molecular framework coupling angiogenesis, angiocrine signals and osteogenesis, which may prove significant for the development of future therapeutic applications.


Nature | 2016

Distinct bone marrow blood vessels differentially regulate haematopoiesis.

Tomer Itkin; Shiri Gur-Cohen; Joel A. Spencer; Amir Schajnovitz; Saravana K. Ramasamy; Anjali P. Kusumbe; Guy Ledergor; Yookyung Jung; Idan Milo; Michael G. Poulos; Alexander Kalinkovich; Aya Ludin; Orit Kollet; Guy Shakhar; Jason M. Butler; Shahin Rafii; Ralf H. Adams; David T. Scadden; Charles P. Lin; Tsvee Lapidot

Bone marrow endothelial cells (BMECs) form a network of blood vessels that regulate both leukocyte trafficking and haematopoietic stem and progenitor cell (HSPC) maintenance. However, it is not clear how BMECs balance these dual roles, and whether these events occur at the same vascular site. We found that mammalian bone marrow stem cell maintenance and leukocyte trafficking are regulated by distinct blood vessel types with different permeability properties. Less permeable arterial blood vessels maintain haematopoietic stem cells in a low reactive oxygen species (ROS) state, whereas the more permeable sinusoids promote HSPC activation and are the exclusive site for immature and mature leukocyte trafficking to and from the bone marrow. A functional consequence of high permeability of blood vessels is that exposure to blood plasma increases bone marrow HSPC ROS levels, augmenting their migration and differentiation, while compromising their long-term repopulation and survival. These findings may have relevance for clinical haematopoietic stem cell transplantation and mobilization protocols.


Nature | 2016

Age-dependent modulation of vascular niches for haematopoietic stem cells

Anjali P. Kusumbe; Saravana K. Ramasamy; Tomer Itkin; Maarja Andaloussi Mäe; Urs H. Langen; Christer Betsholtz; Tsvee Lapidot; Ralf H. Adams

Blood vessels define local microenvironments in the skeletal system, play crucial roles in osteogenesis and provide niches for haematopoietic stem cells. The properties of niche-forming vessels and their changes in the ageing organism remain incompletely understood. Here we show that Notch signalling in endothelial cells leads to the expansion of haematopoietic stem cell niches in bone, which involves increases in CD31-positive capillaries and platelet-derived growth factor receptor-β (PDGFRβ)-positive perivascular cells, arteriole formation and elevated levels of cellular stem cell factor. Although endothelial hypoxia-inducible factor signalling promotes some of these changes, it fails to enhance vascular niche function because of a lack of arterialization and expansion of PDGFRβ-positive cells. In ageing mice, niche-forming vessels in the skeletal system are strongly reduced but can be restored by activation of endothelial Notch signalling. These findings indicate that vascular niches for haematopoietic stem cells are part of complex, age-dependent microenvironments involving multiple cell populations and vessel subtypes.


Trends in Cell Biology | 2015

Regulation of tissue morphogenesis by endothelial cell-derived signals

Saravana K. Ramasamy; Anjali P. Kusumbe; Ralf H. Adams

Endothelial cells (ECs) form an extensive network of blood vessels that has numerous essential functions in the vertebrate body. In addition to their well-established role as a versatile transport network, blood vessels can induce organ formation or direct growth and differentiation processes by providing signals in a paracrine (angiocrine) fashion. Tissue repair also requires the local restoration of vasculature. ECs are emerging as important signaling centers that coordinate regeneration and help to prevent deregulated, disease-promoting processes. Vascular cells are also part of stem cell niches and have key roles in hematopoiesis, bone formation, and neurogenesis. Here, we review these newly identified roles of ECs in the regulation of organ morphogenesis, maintenance, and regeneration.


Nature Communications | 2016

Blood flow controls bone vascular function and osteogenesis

Saravana K. Ramasamy; Anjali P. Kusumbe; Maria Schiller; Dagmar Zeuschner; M. Gabriele Bixel; Carlo Milia; Jaba Gamrekelashvili; Anne Limbourg; Alexander Medvinsky; Massimo Santoro; Florian P. Limbourg; Ralf H. Adams

While blood vessels play important roles in bone homeostasis and repair, fundamental aspects of vascular function in the skeletal system remain poorly understood. Here we show that the long bone vasculature generates a peculiar flow pattern, which is important for proper angiogenesis. Intravital imaging reveals that vessel growth in murine long bone involves the extension and anastomotic fusion of endothelial buds. Impaired blood flow leads to defective angiogenesis and osteogenesis, and downregulation of Notch signalling in endothelial cells. In aged mice, skeletal blood flow and endothelial Notch activity are also reduced leading to decreased angiogenesis and osteogenesis, which is reverted by genetic reactivation of Notch. Blood flow and angiogenesis in aged mice are also enhanced on administration of bisphosphonate, a class of drugs frequently used for the treatment of osteoporosis. We propose that blood flow and endothelial Notch signalling are key factors controlling ageing processes in the skeletal system.


Nature Communications | 2016

Regulation of monocyte cell fate by blood vessels mediated by Notch signalling

Jaba Gamrekelashvili; Roberto Giagnorio; Jasmin Jussofie; Oliver Soehnlein; Johan Duchene; Carlos G. Briseño; Saravana K. Ramasamy; Kashyap Krishnasamy; Anne Limbourg; Tamar Kapanadze; Chieko Ishifune; Rabea Hinkel; Freddy Radtke; Lothar J. Strobl; Ursula Zimber-Strobl; L. Christian Napp; Johann Bauersachs; Hermann Haller; Koji Yasutomo; Christian Kupatt; Kenneth M. Murphy; Ralf H. Adams; Christian Weber; Florian P. Limbourg

A population of monocytes, known as Ly6Clo monocytes, patrol blood vessels by crawling along the vascular endothelium. Here we show that endothelial cells control their origin through Notch signalling. Using combinations of conditional genetic deletion strategies and cell-fate tracking experiments we show that Notch2 regulates conversion of Ly6Chi monocytes into Ly6Clo monocytes in vivo and in vitro, thereby regulating monocyte cell fate under steady-state conditions. This process is controlled by Notch ligand delta-like 1 (Dll1) expressed by a population of endothelial cells that constitute distinct vascular niches in the bone marrow and spleen in vivo, while culture on recombinant DLL1 induces monocyte conversion in vitro. Thus, blood vessels regulate monocyte conversion, a form of committed myeloid cell fate regulation.


Cell Stem Cell | 2018

Inhibition of Endosteal Vascular Niche Remodeling Rescues Hematopoietic Stem Cell Loss in AML

Delfim Duarte; Edwin D. Hawkins; Olufolake Akinduro; Heather Ang; Katia De Filippo; Isabella Y. Kong; Myriam Haltalli; Nicola Ruivo; Lenny Straszkowski; Stephin J. Vervoort; Catriona McLean; Tom S. Weber; Reema Khorshed; Chiara Pirillo; Andrew Wei; Saravana K. Ramasamy; Anjali P. Kusumbe; Ken R. Duffy; Ralf H. Adams; Louise E. Purton; Leo M. Carlin; Cristina Lo Celso

Summary Bone marrow vascular niches sustain hematopoietic stem cells (HSCs) and are drastically remodeled in leukemia to support pathological functions. Acute myeloid leukemia (AML) cells produce angiogenic factors, which likely contribute to this remodeling, but anti-angiogenic therapies do not improve AML patient outcomes. Using intravital microscopy, we found that AML progression leads to differential remodeling of vasculature in central and endosteal bone marrow regions. Endosteal AML cells produce pro-inflammatory and anti-angiogenic cytokines and gradually degrade endosteal endothelium, stromal cells, and osteoblastic cells, whereas central marrow remains vascularized and splenic vascular niches expand. Remodeled endosteal regions have reduced capacity to support non-leukemic HSCs, correlating with loss of normal hematopoiesis. Preserving endosteal endothelium with the small molecule deferoxamine or a genetic approach rescues HSCs loss, promotes chemotherapeutic efficacy, and enhances survival. These findings suggest that preventing degradation of the endosteal vasculature may improve current paradigms for treating AML.


Nature Protocols | 2015

Sample preparation for high-resolution 3D confocal imaging of mouse skeletal tissue

Anjali P. Kusumbe; Saravana K. Ramasamy; Andrea Starsichova; Ralf H. Adams

High-resolution confocal imaging is a vital tool for analyzing the 3D architecture and detailed spatial distribution of cells in situ. However, imaging of skeletal tissue has remained technically challenging because of its calcified nature. Here we describe a protocol that allows high-resolution imaging of skeletal tissue with preservation of cellular morphology and tissue architecture. The procedure involves tissue fixation, decalcification and cryosectioning of the mouse skeletal tissue to generate thick sections. The thick sections generated by this procedure are not only compatible with the analysis of genetically expressed fluorescent proteins but they also preserve antigenicity, thus enabling diverse combinations of antibody labeling. Further, this procedure also permits other fluorescence techniques such as TUNEL and ethynyl deoxyuridine (EdU) incorporation assays. Images resulting from the confocal imaging can be assessed qualitatively and quantitatively to analyze various parameters such as distribution and interrelationships of cell types. The technique is straightforward and robust, highly reproducible and can be completed in ∼11 d.


Cell Reports | 2017

Flow Dynamics and HSPC Homing in Bone Marrow Microvessels

M. Gabriele Bixel; Anjali P. Kusumbe; Saravana K. Ramasamy; Kishor K. Sivaraj; Stefan Butz; Dietmar Vestweber; Ralf H. Adams

Summary Measurements of flow velocities at the level of individual arterial vessels and sinusoidal capillaries are crucial for understanding the dynamics of hematopoietic stem and progenitor cell homing in the bone marrow vasculature. We have developed two complementary intravital two-photon imaging approaches to determine blood flow dynamics and velocities in multiple vessel segments by capturing the motion of red blood cells. High-resolution spatiotemporal measurements through a cranial window to determine short-time dynamics of flowing blood cells and repetitive centerline scans were used to obtain a detailed flow-profile map with hemodynamic parameters. In addition, we observed the homing of individual hematopoietic stem and progenitor cells and obtained detailed information on their homing behavior. With our imaging setup, we determined flow patterns at cellular resolution, blood flow velocities and wall shear stress in small arterial vessels and highly branched sinusoidal capillaries, and the cellular dynamics of hematopoietic stem and progenitor cell homing.

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Tomer Itkin

Weizmann Institute of Science

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Tsvee Lapidot

Weizmann Institute of Science

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Orit Kollet

Weizmann Institute of Science

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Shiri Gur-Cohen

Weizmann Institute of Science

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Alexander Kalinkovich

Weizmann Institute of Science

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