Therapeutic glycan-specific antibody binding mediates protection during primary amoebic meningoencephalitis
Annie Park Moseman1, Ching-Wen Chen1, Xiaoe Liang1
1Department of Integrative Immunobiology, Duke University School of Medicine, Durham, North Carolina, USA.
Abstract:
Naegleria fowleri (N. fowleri) infection via the upper respiratory tract causes a fatal CNS disease known as primary amoebic meningoencephalitis (PAM). The robust in vivo immune response to N. fowleri infection underlies the immunopathology that characterizes the disease. However, little is known about why this pathogen evades immune control. Infections occur in seemingly healthy individuals and effective clinical options are lacking, thus a nearly 98% fatality rate. It is unclear how or if host factors may contribute to susceptibility or disease exacerbation, yet mechanistic studies of the in vivo immune response and disease progression are hampered by a lack of tools. In this study, we have generated monoclonal antibodies to N. fowleri surface antigens and shown them to be excellent tools for studying the in vivo immune response. We also identified one monoclonal, 2B6, with potent inherent anti-amoebastatic activity in vitro. This antibody is also able to therapeutically prolong host survival in vivo and furthermore, recombinant antibodies with an isotype more capable of directing immune effector activity further improved survival when given therapeutically. Thus, we report the generation of a novel monoclonal antibody to N. fowleri that can enhance beneficial immune functions, even when given therapeutically during disease. We believe this provides evidence for the potential of therapeutic antibody treatments in PAM.IMPORTANCENaegleria fowleri (N. fowleri) is a free-living amoeba that is found ubiquitously in warm freshwater. While human exposure is common, it rarely results in pathogenesis. However, when N. fowleri gains access to the upper airway, specifically the olfactory mucosa, infection leads to a lethal disease known as primary amoebic meningoencephalitis (PAM). As a free-living amoeba, N. fowleri does not need a mammalian host; indeed, it can be accurately described as an accidental opportunistic pathogen. While most opportunistic infections occur in humans who are immunocompromised, there are no reported immune dysfunctions associated with N. fowleri infection. Therefore, the basis for N. fowleri opportunism is not known, and the reasons why some humans develop PAM while others do not are simply not well understood. It is reasonable to speculate that local or acute immune failures, potentially even a lack of prior adaptive immunity, are related to disease susceptibility. Careful immune profiling and characterization of the in vivo immune response to N. fowleri in a mammalian host are desperately needed to understand which host factors are critical to defense, and how these responses might be compromised in a way that results in lethal infection. To identify genes and pathways that provide resistance against in vivo N. fowleri infection, we generated surface reactive monoclonal antibodies (Abs) that provide rapid amoeba detection and quantification in vivo. Interestingly, N. fowleri binding Abs have been readily detected in the serum and saliva of humans and animals suggesting that non-lethal exposure drives a humoral immune response against the amoeba. Yet, how Abs might interact with Naegleria in vivo or contribute to preventing lethal infection is not well understood. In this study, we have generated and characterized a monoclonal antibody (Ab), Clone 2B6, that recognizes a glycosylated surface antigen present in cultured in vitro N. fowleri as well as mouse passaged N. fowleri. When clone 2B6 binds to N. fowleri, it inhibits amoeba motility and feeding behavior, leading to strong growth inhibition. Mice treated systemically and intracerebrally with Ab displayed a delayed disease onset and prolonged survival. In addition, we found that enhancing immune-directed effector activity via antibody isotype could further enhance survival without obvious immunopathogenic side effects. These findings show the potential for antibody treatment as an additional therapeutic to those used currently in PAM.
Insights
Researchers developed a novel monoclonal antibody, 2B6, effective against Naegleria fowleri (N. fowleri) infections. This antibody inhibits N. fowleri growth and prolongs survival in mice, offering potential new therapeutic strategies for primary amoebic meningoencephalitis (PAM).
Area of Science:
- Immunology
- Infectious Diseases
- Neuroscience
Background:
- Naegleria fowleri (N. fowleri) causes fatal primary amoebic meningoencephalitis (PAM), a CNS disease with a high fatality rate.
- The immune response to N. fowleri is not fully understood, and effective treatments are lacking.
- Host factors contributing to susceptibility or disease exacerbation remain unclear, hindering mechanistic studies.
Purpose of the Study:
- To generate tools for studying the in vivo immune response to N. fowleri.
- To identify and characterize monoclonal antibodies with anti-amoebastatic activity.
- To evaluate the therapeutic potential of these antibodies in treating N. fowleri infection.
Main Methods:
- Generation of monoclonal antibodies against N. fowleri surface antigens.
- In vitro assessment of antibody anti-amoebastatic activity and inhibition of motility/feeding.
- In vivo therapeutic evaluation of monoclonal antibodies in a mouse model, including survival studies.
Main Results:
- Monoclonal antibodies were generated and validated as tools for studying in vivo immune responses.
- Clone 2B6 demonstrated potent in vitro anti-amoebastatic activity, inhibiting N. fowleri growth.
- Therapeutic administration of clone 2B6 and isotype-enhanced variants prolonged host survival in vivo.
Conclusions:
- A novel monoclonal antibody, 2B6, targeting N. fowleri surface antigens has been developed.
- This antibody exhibits therapeutic potential by inhibiting parasite growth and enhancing host survival.
- Antibody-based therapies represent a promising avenue for treating primary amoebic meningoencephalitis (PAM).
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