Intracellular signaling molecules of nerve tissue progenitors as pharmacological targets for treatment of ethanol-induced neurodegeneration

Author(s):  
Gleb Nikolaevich Zyuz’kov ◽  
Larisa Arkad`evna Miroshnichenko ◽  
Elena Vladislavovna Simanina ◽  
Larisa Alexandrovna Stavrova ◽  
Tatyana Yur`evna Polykova

Abstract Objectives The development of approaches to the treatment of neurodegenerative diseases caused by alcohol abuse by targeted pharmacological regulation of intracellular signaling transduction of progenitor cells of nerve tissue is promising. We studied peculiarities of participation of NF-кB-, сАМР/РКА-, JAKs/STAT3-, ERK1/2-, p38-pathways in the regulation of neural stem cells (NSC) and neuronal-committed progenitors (NCP) in the simulation of ethanol-induced neurodegeneration in vitro and in vivo. Methods In vitro, the role of signaling molecules (NF-кB, сАМР, РКА, JAKs, STAT3, ERK1/2, p38) in realizing the growth potential of neural stem cells (NSC) and neuronal-committed progenitors (NCP) in ethanol-induced neurodegeneration modeled in vitro and in vivo was studied. To do this, the method of the pharmacological blockade with the use of selective inhibitors of individual signaling molecules was used. Results Several of fundamental differences in the role of certain intracellular signaling molecules (SM) in proliferation and specialization of NSC and NCP have been revealed. It has been shown that the effect of ethanol on progenitors is accompanied by the formation of a qualitatively new pattern of signaling pathways. Data have been obtained on the possibility of stimulation of nerve tissue regeneration in ethanol-induced neurodegeneration by NF-кB and STAT3 inhibitors. It has been found that the blockage of these SM stimulates NSC and NCP in conditions of ethanol intoxication and does not have a «negative» effect on the realization of the growth potential of intact progenitors (which will appear de novo during therapy). Conclusions The results may serve as a basis for the development of fundamentally new drugs to the treatment of alcoholic encephalopathy and other diseases of the central nervous system associated with alcohol abuse.

2020 ◽  
Vol 11 (1) ◽  
pp. 8065-8074

The implementation of the concept of drug therapy of neurological disorders in chronic alcohol intoxication is, in some cases, unsuccessful. Promising is the search for new pharmacological targets among the intracellular signaling molecules of regenerating-competent cells. In the conditions of in vitro and in vivo modeling of ethanol-induced neurodegeneration, the role of NF-кВ in the realization of the growth potential of neural progenitors and the secretion of neurotrophins by glial elements was studied. The absence of participation of NF-кВ in the regulation of mitotic activity of neural SC (NSC) and of neuronal-committed progenitors (NCP) in their optimal living conditions and in the influence of ethanol in vitro is shown. At the same time, NF-кВ hinders the implementation of the NSC specialization process. The prolonged introduction of ethanol per os mice was accompanied by the appearance of an inhibitory value in NF-кВ in relation to the intensity of progenitors proliferation. The blockade of NF-кВ of NSC and NCP animals with neurodegeneration caused the progression of their cell cycle. The participation of NF-кВ in the secretory function of astrocytes and oligodendrogliocytes has been established. The inactivation of the nuclear transcription factor led to a decrease in their production of neurotrophins, including in the case of ethanol. At the same time, there were no changes from the microglia functioning.


2018 ◽  
Author(s):  
Νικολέτα-Νίκη Σαχίνη

Ο καρκίνος του μαστού αποτελεί την πιο συχνή μορφή καρκίνου στις γυναίκες. Πρόκειται για μια ετερογενή ασθένεια όσον αφορά το φαινότυπό της και το γενετικό της υπόβαθρο. Καρκινικά χαρακτηριστικά, όπως ο ρυθμός πολλαπλασιασμού, η διεισδυτικότητα, η μεταστατικότητα, η ανθεκτικότητα στα φάρμακα και συγκεκριμένες ογκογόνες μεταλλαγές διαφέρουν μεταξύ περιπτώσεων καρκίνου του μαστού. Τέτοιου είδους ετερογένεια (ενδο-ογκική και δι-ογκική) μεταξύ των όγκων προκύπτει από στοχαστικές γενετικές και επιγενετικές αλλαγές οι οποίες προσδίδουν κληρονομήσιμες φαινοτυπικές και λειτουργικές διαφορές μεταξύ των καρκινικών κυττάρων. Παρ’ όλο που υπάρχουν θεραπευτικά σχήματα που αντιμετωπίζουν επιτυχώς την ασθένεια, η ετερογενής της φύση την καθιστά δύσκολο θεραπευτικό στόχο. Επομένως, η κατανόηση των παθογενετικών και μοριακών μηχανισμών οι οποίοι διέπουν τη νόσο και τους διαφορετικούς υποτύπους της είναι απαραίτητη για την ανακάλυψη νέων φαρμακευτικών στόχων και το σχεδιασμό εξατομικευμένης θεραπείας.Η πρωτεΐνη της προμυελοκυτταρικής λευχαιμίας (PML) περιγράφεται συνήθως ως ογκοκατασταλτικός παράγοντας λόγω των προ-αποπτωτικών, ανασταλτικών του κυτταρικού κύκλου και προγηραντικών ιδιοτήτων της. Συνεπώς, η έκφρασή της απουσιάζει από πρωτοπαθή δείγματα διαφόρων νεοπλασιών, συμπεριλαμβανομένου και του καρκίνου του μαστού. Παρ’ όλα αυτά σε πρόσφατες βιβλιογραφικές αναφορές η PML χαρακτηρίζεται ως ογκογόνος παράγοντας. Συγκεκριμένα, στη χρόνια μυελογενή λευχαιμία, σε γλοιοβλαστώματα και σε ορισμένες περιπτώσεις τριπλά αρνητικού καρκίνου του μαστού η PML εκφράζεται σε υψηλά επίπεδα. Οι προ-ογκογόνες ιδιότητες της PML φαίνεται να σχετίζονται με τη ρύθμιση του κυτταρικού κύκλου των φυσιολογικών και καρκινικών βλαστοκυττάρων αλλά και τη διατήρηση της αυτο-ανανέωσης, μέσω μεταβολικών οδών π.χ. οξείδωση των λιπαρών οξέων. Επομένως, προκύπτει ότι υπό συγκεκριμένες συνθήκες η PML έχει διττό ρόλο στην ογκογένεση εκδηλώνοντας ογκοκατασταλτική ή ογκογόνα δράση.Σκοπός της παρούσας διδακτορικής διατριβής ήταν η αποσαφήνιση των μοριακών και επιγενετικών μηχανισμών με τους οποίους η PML ρυθμίζει τον κυτταρικό πολλαπλασιασμό και τα μονοπάτια αυτό-ανανέωσης στον καρκίνο του μαστού. Τα πειραματικά μας δεδομένα υποστηρίζουν ότι η υπερέκφραση (ΥΕ) της PML αναστέλλει τον πολλαπλασιασμό των κυττάρων και μπλοκάρει τον κυτταρικό κύκλο της τριπλά αρνητικά κυτταρικής σειράς καρκίνου του μαστού, MDA-MB-231. Από την ανάλυση του μεταγραφικού προφίλ αυτών των κυττάρων προκύπτει ότι σημαντικά σηματοδοτικά μονοπάτια και βιολογικές λειτουργίες, όπως και οι ρυθμιστές τους, διαταράσσονται μετά από ΥΕ PML. Ενδιαφέρον παρουσιάζει το γεγονός ότι πολλά από τα γονίδια σχετιζόμενα με τον κυτταρικό πολλαπλασιασμό των οποίων η έκφραση μειώνεται μετά από ΥΕ PML είναι και, θετικά, ρυθμιζόμενοι στόχοι του μεταγραφικού παράγοντα FOXM1 (Forkhead Box M1). Η λειτουργική αλληλεπίδραση της PMLIV με την επικράτεια πρόσδεσης του FOXM1 στο DNA, καθώς και η μείωση του FOXM1 σε επίπεδο mRNA και πρωτεΐνης, υποδεικνύουν ότι η PMLIV είναι ένας καταστολέας του FOXM1. Επιπλέον, δείξαμε ότι η PMLIV YE επηρεάζει το μεταγραφικό πρόγραμμα του μεταγραφικού παράγοντα, FOXO3, o οποίος δρα ανοδικά του FOXM1. Συμπερασματικά, προτείνουμε ότι η PML επηρεάζει την ισορροπία των FOXO3 και FOXM1 μεταγραφικών προγραμμάτων στοχεύοντας διακριτά υποσύνολα γονιδίων. Τα αποτελέσματα μας δείχνουν ότι υψηλά επίπεδα PML μπορούν να επηρεάσουν ταυτόχρονα ποικίλα σηματοδοτικά μονοπάτια στοχεύοντας τον άξονα FOXO3-FOXM1, ο οποίος συνδέει τον κυτταρικό πολλαπλασιασμό (FOXM1) με την απόπτωση, διακοπή του κυτταρικού κύκλου και μηχανισμούς επιβίωσης (FOXO3). Βρήκαμε ακόμη ότι εκτός από τους FOXO3 και FOXM1, η ΥΕ PML στοχεύει κι άλλους καίριους μεταγραφικούς παράγοντες (NFYA,E2F,TBP) με γενικό ρόλο στη μεταγραφή και στον κυτταρικό πολλαπλασιασμό. Συνεπώς, θεωρούμε ότι η PMLIV ΥΕ επιδρά σε σημαντικές βιολογικές διεργασίες μέσω ενός σύνθετου δικτύου μεταγραφικών παραγόντων και επιγενετικών αλλαγών. Αρχικά πειράματα PMLIV YE σε κύτταρα διαφορετικού τύπου καρκίνου του μαστού, τα Τ47D, έδειξαν ότι η PMLIV YE οδηγεί σε αναστολή του κυτταρικού πολλαπλασιασμού, αλλά προκαλεί και διαφορετικές αποκρίσεις σε σχέση με τα MDA-MB-231 κύτταρα.Μελετήσαμε ακόμη το ρόλο της PMLIV σε βλαστικά καρκινικά κύτταρα του μαστού. Παρατηρήσαμε ότι η PMLIV YE μειώνει την ικανότητα σχηματισμού ογκοσφαιρών στην καρκινική σειρά MDA-MB-231, υποδηλώνοντας ότι η PMLIV μειώνει την αυτό-ανανέωση των βλαστικών καρκινικών κυττάρων. Επιπλέον, ερευνήσαμε την επίδραση της PMLIV σε απομονωμένους, με βάση την έκφραση των επιφανειακών δεικτών EpCAM/CD24, υποπληθυσμούς καρκινικών κυττάρων και διαπιστώσαμε ότι η PMLIV YE επηρεάζει με διαφορετικό τρόπο την έκφραση γονιδίων που εμπλέκονται στη διαφοροποίηση του επιθηλίου, στην επιθηλιακή προς μεσεγχυματική μετάβαση, στον πολλαπλασιασμό και στη βλαστικότητα του κάθε υποπληθυσμού, καθώς και την ικανότητα αυτο-ανανέωσης η οποία καθορίστηκε in vitro με τη δοκιμασία σφαιρογένεσης και in vivo με ξενομοσχεύματα. Επομένως, τα αρχικά μας δεδομένα, σε αντίθεση με προηγούμενες αναφορές, υποστηρίζουν την άποψη ότι πολύ ογκογόνοι κυτταρικοί υποπληθυσμοί εμπίπτουν σε περισσότερους από έναν EpCAM/CD24 υπότυπους οι οποίοι επηρεάζονται από την PMLIV με διαφορετικό τρόπο.Συμπερασματικά, η ερευνά μας δίνει πληροφορίες για τη ρύθμιση της ανάπτυξης των όγκων από την PML στον καρκίνο του μαστού. Προσδιορίσαμε τους FOXO3 και FOXM1 σαν αλληλεπιδρώντες παράγοντες της PML, οι οποίοι προσδιορίζουν και το λειτουργικό αποτέλεσμα της PML στο κυτταρικό υπόβαθρο των MDA-MB-231 κυττάρων και αναδείξαμε έναν καινούριο, ρυθμιστικό άξονα στον πολλαπλασιασμό του καρκίνου του μαστού, PML/FOXO3/FOXM1, ο οποίος μπορεί να είναι θεραπευτικός στόχος. Επιπλέον, οι αρχικές παρατηρήσεις στα T47D κύτταρα, ενισχύουν την άποψη περί κυτταρικού υποβάθρου εξαρτώμενης δράσης της PML. Η PMLIV YE επηρέασε πολύ λιγότερο τη δημιουργία σφαιρών, ένδειξη αυτο-ανανέωσης, στα T47D σε σχέση με τα MDA-MB-231. Επιπλέον, συγκρίνοντας το μεταγραφικό προφίλ των δύο κυτταρικών σειρών, οι οποίες αντιπροσωπεύουν διαφορετικούς μοριακούς υποτύπους του καρκίνου του μαστού, μετά από PMLIV YE διαπιστώσαμε ότι η PMLIV επηρεάζει τόσο κοινές αλλά και διακριτές ομάδες γονιδίων. Προτείνουμε ότι η PML ευνοεί τόσο την αναστολή της ανάπτυξης του όγκου όσο και μηχανισμούς επιβίωσης σε διαφορετικό βαθμό, ο οποίος καθορίζεται από το εκάστοτε γενετικό και επιγενετικό υπόβαθρο των κυττάρων.


2014 ◽  
Vol 115 (suppl_1) ◽  
Author(s):  
Hyun Sook Hong ◽  
Suna Kim ◽  
Youngsook Son

Bone marrow stem cells, especially, endothelial precursor cells (EPC), mesenchymal stem cells (MSC) or hematopoietic stem cell (HSC) are expected as reparative cells for the repair of a variety of tissue damages such as stroke and myocardial infarction, even though their role in the repair is not demonstrated. This report was investigated to find a role of Substance-p (SP) as a reparative agent in the tissue repair requiring EPC and MSC. In order to examine EPC (EPC SP ) and MSC (MSC SP ) mobilized by SP, we injected SP intravenously for consecutive 2 days and saline was injected as a vehicle. At 3 post injection, peripheral blood (PB) was collected.To get mesenchymal stem cells or endothelial progenitor cells, MNCs were incubated in MSCGM or EGM-2 respectively for 10 days. Functional characteristics of the EPC SP were proven by the capacity to form endothelial tubule network in the matrigel in vitro and in the matrigel plug assay in vivo. In contrast, MSC SP did not form a tube-like structure but formed a pellet-structure on matrigel. However, when both cells were premixed before the matrigel assay, much longer and branched tubular network was formed, in which a-SMA expressing MSC SP were decorating outside of the endothelial tube, especially enriched at the bifurcating point. MSC SP may contribute and reinforce elaborate vascular network formation in vivo by working as pericyte-like cells. Thus, the EPC SP and MSC SP were labeled with PKH green and PKH red respectively and their tubular network was examined. Well organized tubular network was formed, which was covered by PKH green labeled cells and was decorated in a punctate pattern by PKH red labeled cells. In order to investigate the role of EPC SP and MSC SP specifically in vivo, rabbit EPC SP and MSC SP were transplanted to full thickness skin wound. The vessel of EPC SP -transplanted groups was UEA-lectin+, which was not covered with a-SMA+ pericytes but EPC SP + MSC SP -transplanted groups showed, in part, a-SMA+ pericyte-encircled UEA-lectin+ vessels. This proved the specific role of MSC SP as pericytes. From these data, we have postulated that the collaboration of MSC and EPC is essential for normal vessel structure and furthermore, accelerated wound healing as ischemia diseases, which can be stimulated through by SP injection.


2013 ◽  
Vol 33 (suppl_1) ◽  
Author(s):  
Chanwoo Kim ◽  
Hannah Song ◽  
Sandeep Kumar ◽  
Douglas Nam ◽  
Hyuk Sang Kwon ◽  
...  

Atherosclerosis is a multifactorial disease that arises from a combination of endothelial dysfunction and inflammation, occurring preferentially in arterial regions exposed to disturbed flow. Bone morphogenic protein-4 (BMP4) produced by disturbed flow induces inflammation, endothelial dysfunction and hypertension, suggesting the importance of BMPs in vascular biology and disease. BMPs bind to two different types of BMP receptors (BMPRI and II) to instigate intracellular signaling. Increasing evidences suggest a correlative role of BMP4 and atherosclerosis, but the role of BMP receptors especially BMPRII in atherosclerosis is still unclear and whether knockdown of BMPRII is the cause or the consequence of atherosclerosis is still not known. It is therefore, imperative to investigate the mechanisms by which BMPRII expression is modulated and its ramifications in atherosclerosis. Initially, we expected that knockdown of BMPRII will result in loss of pro-atherogenic BMP4 signaling and will thereby prevent atherosclerosis. Contrarily, we found that loss of BMPRII expression causes endothelial inflammation and atherosclerosis. Using BMPRII siRNA and BMPRII +/- mice, we found that BMPRII knockdown induces endothelial inflammation in a BMP-independent manner via mechanisms involving reactive oxygen species (ROS), NFκB, and NADPH oxidases. Further, BMPRII +/- ApoE -/- mice develop accelerated atherosclerosis compared to BMPRII +/+ ApoE -/- mice, suggesting loss of BMPRII may induce atherosclerosis. Interestingly, we found that multiple pro-atherogenic stimuli such as hypercholesterolemia, disturbed flow, pro-hypertensive angiotensin II, and pro-inflammatory cytokine, TNFα, downregulate BMPRII expression in endothelium, while anti-atherogenic stimuli such as stable flow and statin treatment upregulate its expression, both in vivo and in vitro . Moreover, we found that BMPRII expression is significantly diminished in human coronary advanced atherosclerotic lesions. These results suggest that BMPRII is a critical, anti-inflammatory and anti-atherogenic protein that is commonly targeted by multiple pro- and anti-atherogenic factors. BMPRII could be used as a novel diagnostic and therapeutic target in atherosclerosis.


2019 ◽  
Vol 2019 ◽  
pp. 1-16 ◽  
Author(s):  
Qing Xia ◽  
Tao Han ◽  
Pinghua Yang ◽  
Ruoyu Wang ◽  
Hengyu Li ◽  
...  

Background. MicroRNAs (miRNAs) play a critical role in the regulation of cancer stem cells (CSCs). However, the role of miRNAs in liver CSCs has not been fully elucidated. Methods. Real-time PCR was used to detect the expression of miR-miR-28-5p in liver cancer stem cells (CSCs). The impact of miR-28-5p on liver CSC expansion was investigated both in vivo and in vitro. The correlation between miR-28-5p expression and sorafenib benefits in HCC was further evaluated in patient-derived xenografts (PDXs). Results. Our data showed that miR-28-5p was downregulated in sorted EpCAM- and CD24-positive liver CSCs. Biofunctional investigations revealed that knockdown miR-28-5p promoted liver CSC self-renewal and tumorigenesis. Consistently, miR-28-5p overexpression inhibited liver CSC’s self-renewal and tumorigenesis. Mechanistically, we found that insulin-like growth factor-1 (IGF-1) was a direct target of miR-28-5p in liver CSCs, and the effects of miR-28-5p on liver CSC’s self-renewal and tumorigenesis were dependent on IGF-1. The correlation between miR-28-5p and IGF-1 was confirmed in human HCC tissues. Furthermore, the miR-28-5p knockdown HCC cells were more sensitive to sorafenib treatment. Analysis of patient-derived xenografts (PDXs) further demonstrated that the miR-28-5p may predict sorafenib benefits in HCC patients. Conclusion. Our findings revealed the crucial role of the miR-28-5p in liver CSC expansion and sorafenib response, rendering miR-28-5p an optimal therapeutic target for HCC.


2020 ◽  
Vol 219 (5) ◽  
Author(s):  
Shiri P. Yaniv ◽  
Hagar Meltzer ◽  
Idan Alyagor ◽  
Oren Schuldiner

Intrinsic neurite growth potential is a key determinant of neuronal regeneration efficiency following injury. The stereotypical remodeling of Drosophila γ-neurons includes developmental regrowth of pruned axons to form adult specific connections, thereby offering a unique system to uncover growth potential regulators. Motivated by the dynamic expression in remodeling γ-neurons, we focus here on the role of actin elongation factors as potential regulators of developmental axon regrowth. We found that regrowth in vivo requires the actin elongation factors Ena and profilin, but not the formins that are expressed in γ-neurons. In contrast, primary γ-neuron sprouting in vitro requires profilin and the formin DAAM, but not Ena. Furthermore, we demonstrate that DAAM can compensate for the loss of Ena in vivo. Similarly, DAAM mutants express invariably high levels of Ena in vitro. Thus, we show that different linear actin elongation factors function in distinct contexts even within the same cell type and that they can partially compensate for each other.


2019 ◽  
Vol 116 (17) ◽  
pp. 8380-8389 ◽  
Author(s):  
Ralitsa R. Madsen ◽  
Rachel G. Knox ◽  
Wayne Pearce ◽  
Saioa Lopez ◽  
Betania Mahler-Araujo ◽  
...  

ThePIK3CAgene, which encodes the p110α catalytic subunit of PI3 kinase (PI3K), is mutationally activated in cancer and in overgrowth disorders known asPIK3CA-related overgrowth spectrum (PROS). To determine the consequences of geneticPIK3CAactivation in a developmental context of relevance to both PROS and cancer, we engineered isogenic human induced pluripotent stem cells (iPSCs) with heterozygous or homozygous knockin ofPIK3CAH1047R. While heterozygous iPSCs remained largely similar to wild-type cells, homozygosity forPIK3CAH1047Rcaused widespread, cancer-like transcriptional remodeling, partial loss of epithelial morphology, up-regulation of stemness markers, and impaired differentiation to all three germ layers in vitro and in vivo. Genetic analysis ofPIK3CA-associated cancers revealed that 64% had multiple oncogenicPIK3CAcopies (39%) or additional PI3K signaling pathway-activating “hits” (25%). This contrasts with the prevailing view thatPIK3CAmutations occur heterozygously in cancer. Our findings suggest that a PI3K activity threshold determines pathological consequences of oncogenicPIK3CAactivation and provide insight into the specific role of this pathway in human pluripotent stem cells.


Blood ◽  
2010 ◽  
Vol 116 (21) ◽  
pp. 4114-4114
Author(s):  
Yusuke Takeda ◽  
Chiaki Nakaseko ◽  
Hiroaki Tanaka ◽  
Masahiro Takeuchi ◽  
Makiko Yui ◽  
...  

Abstract Abstract 4114 Background Myeloproliferative neoplasms (MPN), a group of hematopoietic stem cell (HSC) disorders, are often accompanied by myelofibrosis. The V617F somatic mutation in the Janus kinase 2 (JAK2) gene has recently been found in the majority of patients with polycythemia vera (PV) and more than half of patients with essential thrombocythemia (ET) and idiopathic myelofibrosis (IMF). The expression of JAK2 V617F causes a PV-like disease with myelofibrosis in a murine bone marrow (BM) transplant model. In addition, a gain-of-function c-MPL W515 mutation was described in nearly 10% of patients with JAK2 V617F-negative IMF. However, the mechanism responsible for MPD and the formation of myelofibrosis in patients without JAK2 or c-MPL mutations is still unclear. We previously identified the fusion of the TEL gene to the Lyn gene (TEL-Lyn) in idiopathic myelofibrosis with ins(12;8)(p13;q11q21). The introduction of TEL-Lyn into HSCs resulted in fatal MPN with massive myelofibrosis in mice, implicating the rearranged Lyn kinase in the pathogenesis of MPN with myelofibrosis. However, the signaling molecules directly downstream from and activated by TEL-Lyn remain unknown. Design and Methods We examined the signaling pathways activated by TEL-Lyn by Western blotting, immunoprecipitation, and in vitro kinase assay using a TEL-Lyn kinase-dead mutant as a control. We further characterized the functional properties of Stat5-deficient HSCs transduced with TEL-Lyn by colony-forming assay and bone marrow transplantation to evaluate the role of STAT5 in TEL-Lyn-induced MPN. Results TEL-Lyn was demonstrated to be constitutively active as a kinase through autophosphorylation. In TEL-Lyn-expressing cells, STAT5, STAT3, and Akt were constitutively activated. Among these signaling molecules, STAT5 was activated most prominently and this occurred without the activation of Jak2, the major kinase for STAT5. TEL-Lyn was co-immunoprecipitated with STAT5, and STAT5 was phosphorylated when incubated with TEL-Lyn, but not with TEL-Lyn kinase-dead mutant. These results indicate that TEL-Lyn interacts with STAT5 and directly activates STAT5 both in vitro and in vivo. Of note, the capacity of TEL-Lyn to support the formation of hematopoietic colonies under cytokine-free conditions in vitro and to induce MPN with myelofibrosis in vivo was profoundly attenuated in a Stat5-null background. Conclusions In this study, we clearly showed that TEL-Lyn directly activates STAT5 and the capacity of TEL-Lyn to induce MPN with myelofibrosis was profoundly attenuated in the absence of STAT5. Our findings of TEL-Lyn in this study support the role of the Src family kinases in the regulation of STAT pathways and implicate active Lyn in the alternative pathway for STAT activation in pathological cytokine signaling. Our mouse model of MPD with myelofibrosis would be beneficial for the analysis of therapeutic approaches for myelofibrosis. Disclosures: No relevant conflicts of interest to declare.


Blood ◽  
2010 ◽  
Vol 116 (21) ◽  
pp. 95-95 ◽  
Author(s):  
Keisuke Ito ◽  
Paolo Sportoletti ◽  
John G Clohessy ◽  
Grisendi Silvia ◽  
Pier Paolo Pandolfi

Abstract Abstract 95 Myelodysplastic syndrome (MDS) is an incurable stem cell disorder characterized by ineffective hematopoiesis and an increased risk of leukemia transformation. Nucleophosmin (NPM) is directly implicated in primitive hematopoiesis, the pathogenesis of hematopoietic malignancies and more recently of MDS. However, little is known regarding the molecular role and function of NPM in MDS pathogenesis and in stem cell biology. Here we present data demonstrating that NPM plays a critical role in the maintenance of hematopoietic stem cells (HSCs) and the transformation of MDS into leukemia. NPM is located on chromosome 5q and is frequently lost in therapy-related and de novo MDS. We have previously shown that Npm1 acts as a haploinsufficient tumor suppressor in the hematopoietic compartment and Npm1+/− mice develop a hematologic syndrome with features of human MDS, including increased susceptibility to leukemogenesis. As HSCs have been demonstrated to be the target of the primary neoplastic event in MDS, a functional analysis of the HSC compartment is essential to understand the molecular mechanisms in MDS pathogenesis. However, the role of NPM in adult hematopoiesis remains largely unknown as Npm1-deficiency leads to embryonic lethality. To investigate NPM function in adult hematopoiesis, we have generated conditional knockout mice of Npm1, using the Cre-loxP system. Analysis of Npm1 conditional mutants crossed with Mx1-Cre transgenic mice reveals that Npm1 plays a crucial role in adult hematopoiesis and ablation of Npm1 in adult HSCs leads to aberrant cycling and followed by apoptosis. Analysis of cell cycle status revealed that HSCs are impaired in their ability to maintain quiescence after Npm1-deletion and are rapidly depleted in vivo as well as in vitro. Competitive reconstitution assay revealed that Npm1 acts cell-autonomously to maintain HSCs. Conditional inactivation of Npm1 leads to an MDS phenotype including a profoundly impaired ability to differentiate into cells of the erythroid lineage, megakaryocyte dyspoiesis and centrosome amplification. Furthermore, Npm1 loss evokes a p53-dependent response and Npm1-deleted HSCs undergo apoptosis in vivo and in vitro. Strikingly, transfer of the Npm1 mutation into a p53-null background rescued the apoptosis of Npm1-ablated HSCs and resulted in accelerated transformation to an aggressive and lethal form of acute myeloid leukemia. Our findings highlight the crucial role of NPM in stem cell biology and identify a new mechanism by which MDS can progress to leukemia. This has important therapeutic implications for de novo MDS as well as therapy-related MDS, which is known to rapidly evolve to leukemia with frequent loss or mutation of TRP53. Disclosures: No relevant conflicts of interest to declare.


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