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Updated: Jan 10, 2026

Automated Measurement of Cryptococcal Species Polysaccharide Capsule and Cell Body
Published on: January 11, 2018
Capsular polysaccharides from Cryptococcus neoformans suppress cancer through apoptosis and immune cell activation
Israel Diniz-Lima1, Leonardo Marques da Fonseca2, Gustavo José Makhoul1
1Instituto de Biofísica Carlos Chagas Filho, Universidade Federal do Rio de Janeiro, Rio de Janeiro 21941-902, Brazil.
Abstract:
Cryptococcus neoformans is an opportunistic fungus that causes severe systemic infections in immunocompromised hosts, particularly in individuals weakened by cancer or chemotherapy. Its main virulence factors, the capsular polysaccharides glucuronoxylomannan (GXM) and glucuronoxylomannogalactan (GXMGal), modulate immune responses during infection and exhibit potential antitumor effects by inducing apoptosis and modulating cellular recruitment. To investigate this dual role, systemic C. neoformans infection was evaluated in murine breast cancer (4 T1) and human lung cancer (A549) models. Although the infection worsened during tumor progression in mice, both purified polysaccharides (GXM and GXMGal) unexpectedly reduced solid tumor growth, while increasing ulcerations. Infected animals also displayed enhanced cytotoxic effector activity in the lungs and mammary tumors. Notably, solid tumors from infected mice showed higher PD-1 expression despite the reduced overall transcoelomic metastasis, suggesting infection restricts tumor dissemination independently of PD-1. Mechanistically, purified GXM and GXMGal directly induced apoptosis in 4 T1 and A549 cells in vitro while suppressing TGF-β production. In addition, the treatment with the polysaccharides also slowed down the growth of 4 T1 tumors, reflecting similar effects seen during infection. Critically, these polysaccharides enhanced recruitment of cytotoxic cells and monocytes to tumor sites and upregulated CCR7 expression in both leukocytes and tumors. Collectively, these findings demonstrate that C. neoformans polysaccharides antagonize tumor growth through direct cytotoxicity and immune modulation. Although infection exacerbates immunosuppression, isolated GXM and GXMGal emerge as dual-function therapeutics, enhancing antitumor immunity and inhibiting metastasis, highlighting their potential as microbial-derived agents for cancer immunotherapy.
Insights
Cryptococcus neoformans polysaccharides, glucuronoxylomannan (GXM) and glucuronoxylomannogalactan (GXMGal), show potential as cancer therapeutics by directly killing cancer cells and enhancing anti-tumor immunity.
Area of Science:
- Mycology
- Immunology
- Cancer Research
Background:
- Cryptococcus neoformans is an opportunistic pathogen.
- Its polysaccharides, GXM and GXMGal, have immunomodulatory and potential antitumor effects.
- The dual role of C. neoformans infection in cancer warrants investigation.
Purpose of the Study:
- To evaluate the impact of C. neoformans infection on cancer progression.
- To investigate the antitumor mechanisms of purified GXM and GXMGal.
- To explore the potential of these polysaccharides as cancer immunotherapy agents.
Main Methods:
- Systemic C. neoformans infection in murine breast cancer (4T1) and human lung cancer (A549) models.
- Administration of purified GXM and GXMGal to cancer cells and tumor-bearing mice.
- Analysis of tumor growth, metastasis, immune cell activity, apoptosis, and cytokine/receptor expression (PD-1, TGF-β, CCR7).
Main Results:
- C. neoformans infection worsened cancer progression but purified GXM and GXMGal reduced tumor growth and metastasis.
- GXM and GXMGal induced apoptosis in cancer cells and suppressed TGF-β production in vitro.
- Infection and polysaccharide treatment enhanced cytotoxic effector activity, monocyte recruitment, and CCR7 expression in tumors.
Conclusions:
- C. neoformans polysaccharides antagonize tumor growth via direct cytotoxicity and immune modulation.
- Isolated GXM and GXMGal demonstrate dual therapeutic functions: enhancing antitumor immunity and inhibiting metastasis.
- These microbial-derived polysaccharides hold promise for cancer immunotherapy.
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