**Policy Summary: IgM Antibody Mechanically Stabilizes Bacterial Toxins**
A recent study by researchers at the S.N. Bose National Centre for Basic Sciences (SNBNCBS), an autonomous institute of the Department of Science and Technology (DST), has revealed a novel function of the IgM antibody. Traditionally understood as a chemical key that binds to pathogens, IgM has been shown to mechanically stabilize bacterial toxins, preventing cellular damage. This discovery suggests that IgM acts as a mechanical brace, increasing the rigidity of dangerous proteins.
The research focused on Protein L, a superantigen secreted by the bacterium *Finegoldia magna*. Using single-molecule force spectroscopy, scientists found that IgM binding significantly increases Protein L's mechanical stability in a concentration-dependent manner. Computer simulations suggest that IgM's multiple binding sites create a synergistic stabilizing effect, making Protein L more resistant to unfolding or breaking apart under force. This mechanical modulation of toxins by IgM offers a new perspective on antibody function beyond simple chemical binding. The findings suggest potential for developing novel antibody-based therapies that target bacterial virulence by mechanically stiffening toxins. Release ID: 2160645
Key Entities Referenced
IgM: The largest antibody and one of the first antibodies the body produces when fighting infections.
Protein L: A molecule from the bacterium Finegoldia magna, known as a superantigen.
Finegoldia magna: A bacterium that secretes Protein L.
S.N. Bose National Centre for Basic Sciences: An autonomous institute of the Department of Science and Technology (DST).
Department of Science and Technology: A department that funds S.N. Bose National Centre for Basic Sciences (SNBNCBS).
B lymphocytes: Cell to which Protein L binds antibodies, creating molecular tension at the binding interface
Delhi: Location where the press release was posted
Ministry of Science & Technology
Giant antibody in humans acts like a brace against
bacterial toxins
Posted On: 25 AUG 2025 5:51PM by PIB Delhi
A new property of the largest antibody so far identified in our body, changes our existing understanding of
antibodies from chemical keys that fit into microbial locks to mechanical engineers, altering the physical
properties of molecules to protect us
This could inspire new therapies by designing antibodies that mechanically stiffen dangerous
proteins and disarming them.
Our immune system is armed with many types of antibodies, each with unique roles. Among them,
IgM is the largest and one of the first antibodies our body produces when fighting infections.
A recent study from researchers at the S.N. Bose National Centre for Basic Sciences (SNBNCBS),
an autonomous institute of the Department of Science and Technology (DST) reveals that IgM not
only binds to pathogens but can also mechanically stabilize bacterial toxins, preventing them from
harming our cells.
Fig: Protein L–antibody interaction- Protein L, secreted as a superantigen by Finegoldia magna, is
composed of several domains, including membrane-spanning, A, and evolutionarily conserved B domains.
Each B domain binds specifically to the light chain of antibodies on B lymphocytes, creating molecular
tension at the binding interface. This force stabilizes the B domains against physiological shear stress,
thereby supporting bacterial immune evasion.
The research focused on Protein L, a molecule from the bacterium Finegoldia magna. Protein L is known as a
“superantigen” because it can bind antibodies in unusual ways, potentially disrupting normal immunefunction. What makes this study remarkable is its use of single-molecule force spectroscopy — a cutting-edge
technique that applies tiny, precise forces to individual molecules to see how they behave under stress.
The scientists discovered that when IgM binds to Protein L, it significantly increases the protein’s
mechanical stability. In simple terms, IgM acts like a brace, making it harder for the protein to unfold
or break apart under force. This effect was concentration-dependent — higher amounts of IgM gave
Protein L more resistance to mechanical stress.
The team also used computer simulations to explore why this happens. They found that IgM’s
multiple binding sites can engage Protein L at several points simultaneously, creating a synergistic
stabilizing effect. This is different from smaller antibodies, which lack the same stabilizing power.
Many bacteria experience mechanical forces inside the human body — for example, during blood
flow or immune cell attack. If IgM can neutralize toxins by making them more mechanically rigid, this
opens new avenues for designing antibody-based therapies that target bacterial virulence in a
completely new way.
This work highlights an underappreciated role of antibodies: not just chemical binders, but also
mechanical modulators in our fight against disease.
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NKR/PSM
(Release ID: 2160645)