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1.
Daniela Matuozzo; Estelle Talouarn; Astrid Marchal; Jeremy Manry; Yoann Seeleuthner; Yu Zhang; Alexandre Bolze; Matthieu Chaldebas; Baptiste Milisavljevic; Peng Zhang; Adrian Gervais; Paul Bastard; Takaki Asano; Lucy Bizien; Federica Barzaghi; Hassan Abolhassani; Ahmad Abou Tayoun; Alessandro Aiuti; Ilad Alavi Darazam; Luis Allende; Rebeca Alonso-Arias; Andres Augusto Arias; Gokhan Aytekin; Peter Bergman; Simone Bondesan; Yenan Bryceson; Ingrid Bustos; Oscar Cabrera-Marante; Sheila Carcel; Paola Carrera; Giorgio Casari; Khalil Chaibi; Roger Colobran; Antonio Condino-Neto; Laura Covill; Loubna El Zein; Carlos Flores; Peter Gregersen; Marta Gut; Filomeen Haerynck; Rabih Halwani; Selda Hancerli; Lennart Hammarstrom; Nevin Hatipoglu; Adem Karbuz; Sevgi Keles; Christele Kyheng; Rafael Leon-Lopez; Jose Luis Franco; Davood Mansouri; Javier Martinez-Picado; Ozge Metin Akcan; Isabelle Migeotte; Pierre-Emmanuel Morange; Guillaume Morelle; Andrea Martin-Nalda; Giuseppe Novelli; Antonio Novelli; Tayfun Ozcelik; Figen Palabiyik; Qiang Pan-Hammarstrom; Rebeca Perez de Diego; Laura Planas-Serra; Daniel Pleguezuelo; Carolina Prando; Aurora Pujol; Luis Felipe Reyes; Jacques Riviere; Carlos Rodriguez-Gallego; Julian Rojas; Patrizia Rovere-Querini; Agatha Schluter; Mohammad Shahrooei; Ali Sobh; Pere Soler-Palacin; Yacine Tandjaoui-Lambiotte; Imran Tipu; Cristina Tresoldi; Jesus Troya; Diederik van de Beek; Mayana Zatz; Pawel Zawadzki; Saleh Zaid Al-Muhsen; Hagit Baris-Feldman; Manish Butte; Stefan Constantinescu; Megan Cooper; Clifton Dalgard; Jacques Fellay; James Heath; Yu-Lung Lau; Richard Lifton; Tom Maniatis; Trine Mogensen; Horst von Bernuth; Alban Lermine; Michel Vidaud; Anne Boland; Jean-Francois Deleuze; Robert Nussbaum; Amanda Kahn-Kirby; France Mentre; Sarah Tubiana; Guy Gorochov; Florence Tubach; Pierre Hausfater; Isabelle Meyts; Shen-Ying Zhang; Anne Puel; Luigi Notarangelo; Stephanie Boisson-Dupuis; Helen Su; Bertrand Boisson; Emmanuelle Jouanguy; Jean-Laurent Casanova; Qian Zhang; Laurent Abel; Aurelie Cobat.
Preprint em Inglês | medRxiv | ID: ppmedrxiv-22281221

RESUMO

BackgroundWe previously reported inborn errors of TLR3- and TLR7-dependent type I interferon (IFN) immunity in 1-5% of unvaccinated patients with life-threatening COVID-19, and auto-antibodies against type I IFN in another 15-20% of cases. MethodsWe report here a genome-wide rare variant burden association analysis in 3,269 unvaccinated patients with life-threatening COVID-19 (1,301 previously reported and 1,968 new patients), and 1,373 unvaccinated SARS-CoV-2-infected individuals without pneumonia. A quarter of the patients tested had antibodies against type I IFN (234 of 928) and were excluded from the analysis. ResultsNo gene reached genome-wide significance. Under a recessive model, the most significant gene with at-risk variants was TLR7, with an OR of 27.68 (95%CI:1.5-528.7, P=1.1x10-4), in analyses restricted to biochemically loss-of-function (bLOF) variants. We replicated the enrichment in rare predicted LOF (pLOF) variants at 13 influenza susceptibility loci involved in TLR3-dependent type I IFN immunity (OR=3.70 [95%CI:1.3-8.2], P=2.1x10-4). Adding the recently reported TYK2 COVID-19 locus strengthened this enrichment, particularly under a recessive model (OR=19.65 [95%CI:2.1-2635.4]; P=3.4x10-3). When these 14 loci and TLR7 were considered, all individuals hemizygous (n=20) or homozygous (n=5) for pLOF or bLOF variants were patients (OR=39.19 [95%CI:5.2-5037.0], P=4.7x10-7), who also showed an enrichment in heterozygous variants (OR=2.36 [95%CI:1.0-5.9], P=0.02). Finally, the patients with pLOF or bLOF variants at these 15 loci were significantly younger (mean age [SD]=43.3 [20.3] years) than the other patients (56.0 [17.3] years; P=1.68x10-5). ConclusionsRare variants of TLR3- and TLR7-dependent type I IFN immunity genes can underlie life-threatening COVID-19, particularly with recessive inheritance, in patients under 60 years old.

2.
Preprint em Inglês | bioRxiv | ID: ppbiorxiv-485509

RESUMO

Phage Immunoprecipitation-Sequencing (PhIP-Seq) allows for unbiased, proteome-wide autoantibody discovery across a variety of disease settings, with identification of disease-specific autoantigens providing new insight into previously poorly understood forms of immune dysregulation. Despite several successful implementations of PhIP-Seq for autoantigen discovery, including our previous work (Vazquez et al. 2020), current protocols are inherently difficult to scale to accommodate large cohorts of cases and importantly, healthy controls. Here, we develop and validate a high throughput extension of PhIP-seq in various etiologies of autoimmune and inflammatory diseases, including APS1, IPEX, RAG1/2 deficiency, Kawasaki Disease (KD), Multisystem Inflammatory Syndrome in Children (MIS-C), and finally, mild and severe forms of COVID19. We demonstrate that these scaled datasets enable machine-learning approaches that result in robust prediction of disease status, as well as the ability to detect both known and novel autoantigens, such as PDYN in APS1 patients, and intestinally expressed proteins BEST4 and BTNL8 in IPEX patients. Remarkably, BEST4 antibodies were also found in 2 patients with RAG1/2 deficiency, one of whom had very early onset IBD. Scaled PhIP-Seq examination of both MIS-C and KD demonstrated rare, overlapping antigens, including CGNL1, as well as several strongly enriched putative pneumonia-associated antigens in severe COVID19, including the endosomal protein EEA1. Together, scaled PhIP-Seq provides a valuable tool for broadly assessing both rare and common autoantigen overlap between autoimmune diseases of varying origins and etiologies.

3.
Preprint em Inglês | bioRxiv | ID: ppbiorxiv-432486

RESUMO

SARS-CoV-2 infection in children is generally milder than in adults, yet a proportion of cases result in hyperinflammatory conditions often including myocarditis. To better understand these cases, we applied a multi-parametric approach to the study of blood cells of 56 children hospitalized with suspicion of SARS-CoV-2 infection. The most severe forms of MIS-C (multisystem inflammatory syndrome in children related to SARS-CoV-2), that resulted in myocarditis, were characterized by elevated levels of pro-angiogenesis cytokines and several chemokines. Single-cell transcriptomic analyses identified a unique monocyte/dendritic cell gene signature that correlated with the occurrence of severe myocarditis, characterized by sustained NF-{kappa}B activity, TNF- signaling, associated with decreased gene expression of NF-{kappa}B inhibitors. We also found a weak response to type-I and type-II interferons, hyperinflammation and response to oxidative stress related to increased HIF-1 and VEGF signaling. These results provide potential for a better understanding of disease pathophysiology.

4.
Preprint em Inglês | bioRxiv | ID: ppbiorxiv-197343

RESUMO

Several studies have analyzed antiviral immune pathways in late-stage severe COVID-19. However, the initial steps of SARS-CoV-2 antiviral immunity are poorly understood. Here, we have isolated primary SARS-CoV-2 viral strains, and studied their interaction with human plasmacytoid pre-dendritic cells (pDC), a key player in antiviral immunity. We show that pDC are not productively infected by SARS-CoV-2. However, they efficiently diversified into activated P1-, P2-, and P3-pDC effector subsets in response to viral stimulation. They expressed CD80, CD86, CCR7, and OX40 ligand at levels similar to influenza virus-induced activation. They rapidly produced high levels of interferon-, interferon-{lambda}1, IL-6, IP-10, and IL-8. All major aspects of SARS-CoV-2-induced pDC activation were inhibited by hydroxychloroquine. Mechanistically, SARS-CoV-2-induced pDC activation critically depended on IRAK4 and UNC93B1, as established using pDC from genetically deficient patients. Overall, our data indicate that human pDC are efficiently activated by SARS-CoV-2 particles and may thus contribute to type I IFN-dependent immunity against SARS-CoV-2 infection.

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