25 research outputs found

    Preclinical and clinical characterization of fibroblast-derived neuregulin-1 on trastuzumab and pertuzumab activity in HER2-positive breast cancer

    Get PDF
    [Purpose]: To characterize expression of neuregulin-1 (NRG1), an HER3 ligand, in HER2-positive breast cancer and its relation with the efficacy of trastuzumab with or without pertuzumab.[Experimental Design]: Characterization of NRG1 expression in tumor cell lines, in tumor specimens, and in cancer-associated fibroblasts (CAFs). Patient-derived CAFs were used to investigate NRG1 impact on the activity of trastuzumab with or without pertuzumab in HER2-positive breast cancer cells. The relationship between NRG1 expression and pathologic response to anti-HER2–based neoadjuvant therapy was assessed in a retrospective patient cohort and in the NeoSphere trial.[Results]: NRG1 was expressed in HER2-positive breast cancer–derived fibroblasts at significantly higher levels than in cancer cells. NRG1 and the conditioned media (CM) from CAFs phosphorylated HER3 and AKT in cancer cells and mediated trastuzumab resistance. Stable genetic depletion of NRG1 from CAFs overcame trastuzumab resistance. Pertuzumab effectively suppressed trastuzumab resistance mediated by either NRG1 or CAF's CM. NRG1 engaged an epithelial-to-mesenchymal transition that was prevented by trastuzumab and pertuzumab. In clinical samples, stromal and/or tumor cell expression of NRG1 determined by immunohistochemistry was uncommon (13.2%) yet significantly linked with residual disease following trastuzumab-based neoadjuvant therapy. In the NeoSphere trial, the magnitude of the difference of pathologic complete response rates favoring the pertuzumab arm was higher in the NRG1-high group.[Conclusions]: CAF-derived NRG1 mediates trastuzumab resistance through HER3/AKT, which might be reverted by pertuzumab. In patients with HER2-positive breast cancer, high expression of NRG1 was associated to poor response to trastuzumab, but not in combination with pertuzumab.This work is supported by ISCIII (CIBERONC CB16/12/00481, CB16/12/00241, PI18/00382, PI18/00006, PI18/01219 and by Generalitat de Catalunya (2017 SGR 507). S. Menendez is supported by Department de Salut, Generalitat de Catalunya (PERIS SLT006/17/00040). MARBiobanc is supported by ISCiii/FEDER (PT17/0015/0011) and by “Xarxa de Bancs de tumors” sponsored by Pla Director d’ Oncologia de Catalunya (XBTC) and Fundacion Jimenez Díaz Biobanks Platform by PT13/0010/0012 grant. Ministry of Economy and Competitiveness of Spain (BFU2015-71371-R) and the CRIS Cancer Foundation provides support to A. Pandiella. Work carried out in our laboratories receive support from the European Community through the Regional Development Funding Program (FEDER). J.C. Montero is funded by the ISCIII through a Miguel Servet program (CPII17/00015) and receives research support from the same institution (PI18/00796). J. Albanell is supported by Breast Cancer Research Foundation (BCRF20-08), Instituto de Salud Carlos III Project Reference number AC15/00062 and the EC under the framework of the ERA-NET TRANSCAN-2 initiative co-financed by FEDER, Instituto de Salud Carlos III (CB16/12/00449 and PI19/01181), and Asociacion Espanola Contra el Cáncer (AECC)

    Adipose-derived mesenchymal stromal cells for the treatment of patients with severe SARS-CoV-2 pneumonia requiring mechanical ventilation. A proof of concept study

    Get PDF
    Background: Identification of effective treatments in severe cases of COVID-19 requiring mechanical ventilation represents an unmet medical need. Our aim was to determine whether the administration of adipose-tissue derived mesenchymal stromal cells (AT-MSC) is safe and potentially useful in these patients. Methods: Thirteen COVID-19 adult patients under invasive mechanical ventilation who had received previous antiviral and/or anti-inflammatory treatments (including steroids, lopinavir/ritonavir, hydroxychloroquine and/or tocilizumab, among others) were treated with allogeneic AT-MSC. Ten patients received two doses, with the second dose administered a median of 3 days (interquartile range-IQR- 1 day) after the first one. Two patients received a single dose and another patient received 3 doses. Median number of cells per dose was 0.98 × 106 (IQR 0.50 × 106) AT-MSC/kg of recipient's body weight. Potential adverse effects related to cell infusion and clinical outcome were assessed. Additional parameters analyzed included changes in imaging, analytical and inflammatory parameters. Findings: First dose of AT-MSC was administered at a median of 7 days (IQR 12 days) after mechanical ventilation. No adverse events were related to cell therapy. With a median follow-up of 16 days (IQR 9 days) after the first dose, clinical improvement was observed in nine patients (70%). Seven patients were extubated and discharged from ICU while four patients remained intubated (two with an improvement in their ventilatory and radiological parameters and two in stable condition). Two patients died (one due to massive gastrointestinal bleeding unrelated to MSC therapy). Treatment with AT-MSC was followed by a decrease in inflammatory parameters (reduction in C-reactive protein, IL-6, ferritin, LDH and d-dimer) as well as an increase in lymphocytes, particularly in those patients with clinical improvement. Interpretation: Treatment with intravenous administration of AT-MSC in 13 severe COVID-19 pneumonia under mechanical ventilation in a small case series did not induce significant adverse events and was followed by clinical and biological improvement in most subjects. Funding: None.We would like to acknowledge the Instituto de Salud Carlos III (ISCIII) through the project “RD16/0011: Red de Terapia Celular”, from the sub-program RETICS, integrated in the “Plan Estatal de I+D+I 2013-2016” and co-financed by the European Regional Development Fund “A way to make Europe”, groups RD16/0011/0001, -/0002, -/005, -/0013, -/0015, -/0029), the Centro en Red de Medicina Regenerativa y Terapia Celular de Castilla y León, Spain and AvanCell-CM (Red de Investigación de Terapia Celular de la Comunidad de Madrid, Spain), for supporting some personnel and networking activities

    Temperature Effects Explain Continental Scale Distribution of Cyanobacterial Toxins

    Get PDF
    Insight into how environmental change determines the production and distribution of cyanobacterial toxins is necessary for risk assessment. Management guidelines currently focus on hepatotoxins (microcystins). Increasing attention is given to other classes, such as neurotoxins (e.g., anatoxin-a) and cytotoxins (e.g., cylindrospermopsin) due to their potency. Most studies examine the relationship between individual toxin variants and environmental factors, such as nutrients, temperature and light. In summer 2015, we collected samples across Europe to investigate the effect of nutrient and temperature gradients on the variability of toxin production at a continental scale. Direct and indirect effects of temperature were the main drivers of the spatial distribution in the toxins produced by the cyanobacterial community, the toxin concentrations and toxin quota. Generalized linear models showed that a Toxin Diversity Index (TDI) increased with latitude, while it decreased with water stability. Increases in TDI were explained through a significant increase in toxin variants such as MC-YR, anatoxin and cylindrospermopsin, accompanied by a decreasing presence of MC-LR. While global warming continues, the direct and indirect effects of increased lake temperatures will drive changes in the distribution of cyanobacterial toxins in Europe, potentially promoting selection of a few highly toxic species or strains.Peer reviewe

    Taking the pulse of Earth's tropical forests using networks of highly distributed plots

    Get PDF
    Tropical forests are the most diverse and productive ecosystems on Earth. While better understanding of these forests is critical for our collective future, until quite recently efforts to measure and monitor them have been largely disconnected. Networking is essential to discover the answers to questions that transcend borders and the horizons of funding agencies. Here we show how a global community is responding to the challenges of tropical ecosystem research with diverse teams measuring forests tree-by-tree in thousands of long-term plots. We review the major scientific discoveries of this work and show how this process is changing tropical forest science. Our core approach involves linking long-term grassroots initiatives with standardized protocols and data management to generate robust scaled-up results. By connecting tropical researchers and elevating their status, our Social Research Network model recognises the key role of the data originator in scientific discovery. Conceived in 1999 with RAINFOR (South America), our permanent plot networks have been adapted to Africa (AfriTRON) and Southeast Asia (T-FORCES) and widely emulated worldwide. Now these multiple initiatives are integrated via ForestPlots.net cyber-infrastructure, linking colleagues from 54 countries across 24 plot networks. Collectively these are transforming understanding of tropical forests and their biospheric role. Together we have discovered how, where and why forest carbon and biodiversity are responding to climate change, and how they feedback on it. This long-term pan-tropical collaboration has revealed a large long-term carbon sink and its trends, as well as making clear which drivers are most important, which forest processes are affected, where they are changing, what the lags are, and the likely future responses of tropical forests as the climate continues to change. By leveraging a remarkably old technology, plot networks are sparking a very modern revolution in tropical forest science. In the future, humanity can benefit greatly by nurturing the grassroots communities now collectively capable of generating unique, long-term understanding of Earth's most precious forests. Resumen Los bosques tropicales son los ecosistemas mĂĄs diversos y productivos del mundo y entender su funcionamiento es crĂ­tico para nuestro futuro colectivo. Sin embargo, hasta hace muy poco, los esfuerzos para medirlos y monitorearlos han estado muy desconectados. El trabajo en redes es esencial para descubrir las respuestas a preguntas que trascienden las fronteras y los plazos de las agencias de financiamiento. AquĂ­ mostramos cĂłmo una comunidad global estĂĄ respondiendo a los desafĂ­os de la investigaciĂłn en ecosistemas tropicales a travĂ©s de diversos equipos realizando mediciones ĂĄrbol por ĂĄrbol en miles de parcelas permanentes de largo plazo. Revisamos los descubrimientos mĂĄs importantes de este trabajo y discutimos cĂłmo este proceso estĂĄ cambiando la ciencia relacionada a los bosques tropicales. El enfoque central de nuestro esfuerzo implica la conexiĂłn de iniciativas locales de largo plazo con protocolos estandarizados y manejo de datos para producir resultados que se puedan trasladar a mĂșltiples escalas. Conectando investigadores tropicales, elevando su posiciĂłn y estatus, nuestro modelo de Red Social de InvestigaciĂłn reconoce el rol fundamental que tienen, para el descubrimiento cientĂ­fico, quienes generan o producen los datos. Concebida en 1999 con RAINFOR (SuramĂ©rica), nuestras redes de parcelas permanentes han sido adaptadas en África (AfriTRON) y el sureste asiĂĄtico (T-FORCES) y ampliamente replicadas en el mundo. Actualmente todas estas iniciativas estĂĄn integradas a travĂ©s de la ciber-infraestructura de ForestPlots.net, conectando colegas de 54 paĂ­ses en 24 redes diferentes de parcelas. Colectivamente, estas redes estĂĄn transformando nuestro conocimiento sobre los bosques tropicales y el rol de Ă©stos en la biĂłsfera. Juntos hemos descubierto cĂłmo, dĂłnde y porquĂ© el carbono y la biodiversidad de los bosques tropicales estĂĄ respondiendo al cambio climĂĄtico y cĂłmo se retroalimentan. Esta colaboraciĂłn pan-tropical de largo plazo ha expuesto un gran sumidero de carbono y sus tendencias, mostrando claramente cuĂĄles son los factores mĂĄs importantes, quĂ© procesos se ven afectados, dĂłnde ocurren los cambios, los tiempos de reacciĂłn y las probables respuestas futuras mientras el clima continĂșa cambiando. Apalancando lo que realmente es una tecnologĂ­a antigua, las redes de parcelas estĂĄn generando una verdadera y moderna revoluciĂłn en la ciencia tropical. En el futuro, la humanidad puede beneficiarse enormemente si se nutren y cultivan comunidades de investigadores de base, actualmente con la capacidad de generar informaciĂłn Ășnica y de largo plazo para entender los que probablemente son los bosques mĂĄs preciados de la tierra. Resumo Florestas tropicais sĂŁo os ecossistemas mais diversos e produtivos da Terra. Embora uma boa compreensĂŁo destas florestas seja crucial para o nosso futuro coletivo, atĂ© muito recentemente os esforços de mediçÔes e monitoramento foram amplamente desconexos. É essencial formarmos redes para obtermos respostas que transcendem fronteiras e horizontes de agĂȘncias financiadoras. Neste estudo nĂłs mostramos como uma comunidade global estĂĄ respondendo aos desafios da pesquisa de ecossistemas tropicais, com equipes diversas medindo florestas, ĂĄrvore por ĂĄrvore, em milhares de parcelas monitoradas Ă  longo prazo. NĂłs revisamos as maiores descobertas cientĂ­ficas deste trabalho, e mostramos tambĂ©m como este processo estĂĄ mudando a ciĂȘncia de florestas tropicais. Nossa abordagem principal envolve unir iniciativas de base a protocolos padronizados e gerenciamento de dados a fim de gerar resultados robustos em escalas ampliadas. Ao conectar pesquisadores tropicais e elevar seus status, nosso modelo de Rede de Pesquisa Social reconhece o papel-chave do produtor dos dados na descoberta cientĂ­fica. Concebida em 1999 com o RAINFOR (AmĂ©rica do Sul), nossa rede de parcelas permanentes foi adaptada para África (AfriTRON) e Sudeste asiĂĄtico (T-FORCES), e tem sido extensamente reproduzida em todo o mundo. Agora estas mĂșltiplas iniciativas estĂŁo integradas atravĂ©s de uma infraestrutura cibernĂ©tica do ForestPlots.net, conectando colegas de 54 paĂ­ses de 24 redes de parcelas. Estas iniciativas estĂŁo transformando coletivamente o entendimento das florestas tropicais e seus papĂ©is na biosfera. Juntos nĂłs descobrimos como, onde e por que o carbono e a biodiversidade da floresta estĂŁo respondendo Ă s mudanças climĂĄticas, e seus efeitos de retroalimentação. Esta duradoura colaboração pantropical revelou um grande sumidouro de carbono persistente e suas tendĂȘncias, assim como tem evidenciado quais direcionadores sĂŁo mais importantes, quais processos florestais sĂŁo mais afetados, onde eles estĂŁo mudando, seus atrasos no tempo de resposta, e as provĂĄveis respostas das florestas tropicais conforme o clima continua a mudar. Dessa forma, aproveitando uma notĂĄvel tecnologia antiga, redes de parcelas acendem faĂ­scas de uma moderna revolução na ciĂȘncia das florestas tropicais. No futuro a humanidade pode se beneficiar incentivando estas comunidades basais que agora sĂŁo coletivamente capazes de gerar conhecimentos Ășnicos e duradouros sobre as florestas mais preciosas da Terra. RĂ©sume Les forĂȘts tropicales sont les Ă©cosystĂšmes les plus diversifiĂ©s et les plus productifs de la planĂšte. Si une meilleure comprĂ©hension de ces forĂȘts est essentielle pour notre avenir collectif, jusqu'Ă  tout rĂ©cemment, les efforts dĂ©ployĂ©s pour les mesurer et les surveiller ont Ă©tĂ© largement dĂ©connectĂ©s. La mise en rĂ©seau est essentielle pour dĂ©couvrir les rĂ©ponses Ă  des questions qui dĂ©passent les frontiĂšres et les horizons des organismes de financement. Nous montrons ici comment une communautĂ© mondiale relĂšve les dĂ©fis de la recherche sur les Ă©cosystĂšmes tropicaux avec diverses Ă©quipes qui mesurent les forĂȘts arbre aprĂšs arbre dans de milliers de parcelles permanentes. Nous passons en revue les principales dĂ©couvertes scientifiques de ces travaux et montrons comment ce processus modifie la science des forĂȘts tropicales. Notre approche principale consiste Ă  relier les initiatives de base Ă  long terme Ă  des protocoles standardisĂ©s et une gestion de donnĂ©es afin de gĂ©nĂ©rer des rĂ©sultats solides Ă  grande Ă©chelle. En reliant les chercheurs tropicaux et en Ă©levant leur statut, notre modĂšle de rĂ©seau de recherche sociale reconnaĂźt le rĂŽle clĂ© de l'auteur des donnĂ©es dans la dĂ©couverte scientifique. Conçus en 1999 avec RAINFOR (AmĂ©rique du Sud), nos rĂ©seaux de parcelles permanentes ont Ă©tĂ© adaptĂ©s Ă  l'Afrique (AfriTRON) et Ă  l'Asie du Sud-Est (T-FORCES) et largement imitĂ©s dans le monde entier. Ces multiples initiatives sont dĂ©sormais intĂ©grĂ©es via l'infrastructure ForestPlots.net, qui relie des collĂšgues de 54 pays Ă  travers 24 rĂ©seaux de parcelles. Ensemble, elles transforment la comprĂ©hension des forĂȘts tropicales et de leur rĂŽle biosphĂ©rique. Ensemble, nous avons dĂ©couvert comment, oĂč et pourquoi le carbone forestier et la biodiversitĂ© rĂ©agissent au changement climatique, et comment ils y rĂ©agissent. Cette collaboration pan-tropicale Ă  long terme a rĂ©vĂ©lĂ© un important puits de carbone Ă  long terme et ses tendances, tout en mettant en Ă©vidence les facteurs les plus importants, les processus forestiers qui sont affectĂ©s, les endroits oĂč ils changent, les dĂ©calages et les rĂ©actions futures probables des forĂȘts tropicales Ă  mesure que le climat continue de changer. En tirant parti d'une technologie remarquablement ancienne, les rĂ©seaux de parcelles dĂ©clenchent une rĂ©volution trĂšs moderne dans la science des forĂȘts tropicales. À l'avenir, l'humanitĂ© pourra grandement bĂ©nĂ©ficier du soutien des communautĂ©s de base qui sont maintenant collectivement capables de gĂ©nĂ©rer une comprĂ©hension unique et Ă  long terme des forĂȘts les plus prĂ©cieuses de la Terre. Abstrak Hutan tropika adalah di antara ekosistem yang paling produktif dan mempunyai kepelbagaian biodiversiti yang tinggi di seluruh dunia. Walaupun pemahaman mengenai hutan tropika amat penting untuk masa depan kita, usaha-usaha untuk mengkaji dan mengawas hutah-hutan tersebut baru sekarang menjadi lebih diperhubungkan. Perangkaian adalah sangat penting untuk mencari jawapan kepada soalan-soalan yang menjangkaui sempadan dan batasan agensi pendanaan. Di sini kami menunjukkan bagaimana sebuah komuniti global bertindak balas terhadap cabaran penyelidikan ekosistem tropika melalui penglibatan pelbagai kumpulan yang mengukur hutan secara pokok demi pokok dalam beribu-ribu plot jangka panjang. Kami meninjau semula penemuan saintifik utama daripada kerja ini dan menunjukkan bagaimana proses ini sedang mengubah bidang sains hutan tropika. Teras pendekatan kami memberi tumpuan terhadap penghubungan inisiatif akar umbi jangka panjang dengan protokol standar serta pengurusan data untuk mendapatkan hasil skala besar yang kukuh. Dengan menghubungkan penyelidik-penyelidik tropika dan meningkatkan status mereka, model Rangkaian Penyelidikan Sosial kami mengiktiraf kepentingan peranan pengasas data dalam penemuan saintifik. Bermula dengan pengasasan RAINFOR (Amerika Selatan) pada tahun 1999, rangkaian-rangkaian plot kekal kami kemudian disesuaikan untuk Afrika (AfriTRON) dan Asia Tenggara (T-FORCES) dan selanjutnya telah banyak dicontohi di seluruh dunia. Kini, inisiatif-inisiatif tersebut disepadukan melalui infrastruktur siber ForestPlots.net yang menghubungkan rakan sekerja dari 54 negara di 24 buah rangkaian plot. Secara kolektif, rangkaian ini sedang mengubah pemahaman tentang hutan tropika dan peranannya dalam biosfera. Kami telah bekerjasama untuk menemukan bagaimana, di mana dan mengapa karbon serta biodiversiti hutan bertindak balas terhadap perubahan iklim dan juga bagaimana mereka saling bermaklum balas. Kolaborasi pan-tropika jangka panjang ini telah mendedahkan sebuah sinki karbon jangka panjang serta arah alirannya dan juga menjelaskan pemandu-pemandu perubahan yang terpenting, di mana dan bagaimana proses hutan terjejas, masa susul yang ada dan kemungkinan tindakbalas hutan tropika pada perubahan iklim secara berterusan di masa depan. Dengan memanfaatkan pendekatan lama, rangkaian plot sedang menyalakan revolusi yang amat moden dalam sains hutan tropika. Pada masa akan datang, manusia sejagat akan banyak mendapat manfaat jika memupuk komuniti-komuniti akar umbi yang kini berkemampuan secara kolektif menghasilkan pemahaman unik dan jangka panjang mengenai hutan-hutan yang paling berharga di dunia

    Astroglial CB1 cannabinoid receptors regulate leptin signaling in mouse brain astrocytes

    No full text
    Type-1 cannabinoid (CB1) receptors and leptin receptors (ObR) have been recently and independently shown to directly regulate astroglial functions. Using a series of in vitro experiments, this study demonstrates that the functions of ObR are tightly controlled by CB1 receptors in mouse astrocytes. Using quantitative PCR and immunodetection, a severe reduction of ObR expression was observed in astrocyte cultures derived from mice lacking CB1 receptor (CB1-KO), and this decreased ObR expression was completely rescued by re-expressing CB1 receptor in CB1-KO cells. The inhibitor of endocannabinoid degradation enzymes JZL195 increased ObR expression, whereas rimonabant, a selective CB1 receptor antagonist, exerted the opposite effect. The deletion of astroglial CB1 receptors also markedly impaired both leptin-mediated signal transducers and activators of transcription 3 and 5 (STAT3 and STAT5) signaling cascades. As a consequence, CB1-KO astrocytes displayed important functional deficiency as in these cultures leptin failed to regulate glycogen storage. In addition, CB1 receptor deletion determined a basal overactivation of STAT5, thereby leading to the downregulation of ObR expression. Using electron microscopy, we found that, similarly to the hippocampus, also neocortical and hypothalamic astrocytes contain low, but detectable levels of CB1 receptor protein. Altogether, our results provide novel astroglial-dependent mechanisms by which CB1 receptors directly interfere with leptin signaling. Considering the impact of these interactions on the leptin-mediated glycogen storage, these findings could be particularly relevant for the brain regulation of energy metabolism and neuronal functions

    Stratification strength and light climate explain variation in chlorophyll a at the continental scale in a European multilake survey in a heatwave summer

    Get PDF
    To determine the drivers of phytoplankton biomass, we collected standardized morphometric, physical, and biological data in 230 lakes across the Mediterranean, Continental, and Boreal climatic zones of the European continent. Multilinear regression models tested on this snapshot of mostly eutrophic lakes (median total phosphorus [TP] = 0.06 and total nitrogen [TN] = 0.7 mg L-1), and its subsets (2 depth types and 3 climatic zones), show that light climate and stratification strength were the most significant explanatory variables for chlorophyll a (Chl a) variance. TN was a significant predictor for phytoplankton biomass for shallow and continental lakes, while TP never appeared as an explanatory variable, suggesting that under high TP, light, which partially controls stratification strength, becomes limiting for phytoplankton development. Mediterranean lakes were the warmest yet most weakly stratified and had significantly less Chl a than Boreal lakes, where the temperature anomaly from the long-term average, during a summer heatwave was the highest (+4 degrees C) and showed a significant, exponential relationship with stratification strength. This European survey represents a summer snapshot of phytoplankton biomass and its drivers, and lends support that light and stratification metrics, which are both affected by climate change, are better predictors for phytoplankton biomass in nutrient-rich lakes than nutrient concentrations and surface temperature.Peer reviewe
    corecore