H2020Individual fellowship2019–2021

LUNG-BIM · Induction of B cell immunity in the lung mucosa

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2019-04-01 → 2021-04-30
EU contribution
€184,708
Participants
2
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Induction of B cell immunity in the lung mucosa

Upper and lower respiratory infections represent one of the major medical concerns due to their rapid ability to spread in a community over a short period of time. The fast widespread of respiratory agents can contribute to pandemic and epidemic outbreaks as observed several times during human history. In fact, the 1918 Spanish flu pandemic, cause by an unusual strain of H1N1 influenza virus was one of the deadliest natural disasters in the last centuries, resulting in around 100 million deaths, five percent of the world's population at that time. At present, respiratory infections remain the deadliest communicable disease and the highest cause of mortality in low-income countries. According to the World Health Organization (WHO), lower and upper respiratory infections caused 3.0 million deaths worldwide in 2016. The highest contagious respiratory infection is caused by influenza A virus. Annual epidemics of influenza infection results in 5 to 10 million cases every year and a significant morbidity and mortality inthe young, elderly, and immunodeficient, remaining a serious threat to public health. Vaccination is widely considered one of the greatest medical achievements for preventing infectious diseases. The basis for most currently licensed human vaccines relies on the induction of high affinity antibodies by antigen-specific B cells that can neutralize infectious pathogens in case of re-exposures. The widespread immunity that vaccination conveys has led to worldwide eradication of smallpox and the elimination of diseases such as polio and diphtheria from most parts of the world. However, the generation of vaccines against influenza virus fail to provide long-lasting protection to different strain variants due to the virus’s rapid antigenic variation. Owing to the lack of cross-protective vaccines, there is an immediate medical need for new therapeutic approaches that can effectively protect us from influenza. A deeper understanding of the cellular and molecular mechanisms of B cell activation in response to respiratory infection is thus key in the development of next-generation vaccines. FINAL PERIOD: Lung-resident memory B cells (MBCs) provide localized protection against reinfection in respiratory airways. The biology of these cells remains largely unexplored. For my proposal, we combined influenza and SARS-CoV-2 infection with fluorescent-reporter mice to identify MBCs regardless of antigen specificity. We found that two main transcriptionally distinct subsets of MBCs colonized the lung peribronchial niche after infection. These subsets arose from different progenitors and were both class switched, somatically mutated, and intrinsically biased in their differentiation fate toward plasma cells. Combined analysis of antigen specificity and B cell receptor repertoire segregated these subsets into "bona fide" virus-specific MBCs and "bystander" MBCs with no apparent specificity for eliciting viruses generated through an alternative permissive process. Thus, I found that diverse transcriptional programs in MBCs are not linked to specific effector fates but rather to divergent strategies of the immune system to simultaneously provide rapid protection from reinfection while diversifying the initial B cell repertoire.

Data: CORDIS, © European Union

Project objective

Vaccination is widely considered one of the greatest medical achievements for preventing infectious diseases. The basis for most currently licensed human vaccines relies on the induction of high affinity antibodies by antigen-specific B cells that can neutralise pathogens in case of future exposures. The widespread immunity that vaccination conveys has led to worldwide eradication of smallpox and the elimination of diseases such as polio, diphtheria, and tetanus from most parts of the world. In spite of the worldwide effort to generate a universal flu vaccine, the induction of long-lasting protective immunity has been, so far, unsuccessful owing to the rapid antigenic variation of influenza virus. Due to these limitations, influenza infection remains a serious threat to public health and economy, with 5 to 30% of the world population acquiring seasonal influenza virus every year. Interestingly, it was recently shown that antibodies derived from lung-resident germinal centre B cells, unlike those arising from lymph nodes or spleen, bear the ability to neutralise different strain variants of the virus. These findings not only uncover the physiological advantage of tissue-specific germinal centres but also underscore the potential of targeting B cells directly at the lung mucosa to generate protective vaccines against highly variable viruses. My research plan aims to unveil the early events involved in the induction of B cell immunity at the lung mucosa, with a focus on how respiratory antigens are delivered to B cells at the barrier surface. A precise delineation of the initial steps required for the generation of broadly-neutralising antibodies upon respiratory infection will provide invaluable medical insights towards the development of a universal flu vaccine.

Original text from CORDIS.

Participants

  • INSTITUT NATIONAL DE LA SANTE ET DE LA RECHERCHE MEDICALE · ParisCoordinatorFrance
  • CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisFrance

Links

Data: CORDIS, © European Union