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Updated: Jun 27, 2026

Ex vivo Culture of Human Placental Explants for the Study of Viral Transmission Across the Maternal-Fetal Interface
Published on: December 30, 2025
Characterization of the placental macrophage secretome: implications for antiviral activity
K García1, V García, J Pérez Laspiur
1Department of Microbiology and Medical Zoology, San Juan 00935, Puerto Rico.
Abstract:
It is well documented that placental macrophages show lower levels of HIV-1 infection than monocyte-derived macrophages (MDM). We used proteomic methods to test the hypothesis that placental macrophages secrete different proteins as compared to MDM that may contribute to decreased HIV-1 replication. Placental macrophages and MDM were cultured for 12 days and supernatant was collected. To characterize supernatants, the protein profiles of placental macrophages and MDM were compared using the protein chip assay. Subsequently, proteins were separated by one-dimensional gel electrophoresis and identified by tandem mass spectrometry at the corresponding mass to charge (m/z) range of 5000-20,000. Significant differences were found between placental macrophages and MDM in seven protein peaks with m/z values of 6075, 6227, 11,662, 14,547, 6158, 7740, and 11,934 on the CM10 and IMAC chips. After sequencing and identification, five proteins were validated for differential expression in placental macrophages and MDM by Western blot analyses. Peroxiredoxin 5, found to be more abundant in placental macrophage supernatants, is important in the cellular antioxidant mechanisms, and other members of its family have shown antiviral activity. Cystatin B was less abundant in PM supernatant, and decreased intracellular levels have recently been shown to be associated with lower HIV-1 replication in placental macrophages than in MDM. This study elucidates for the first time the placental macrophage secretome corresponding to 5000-20,000 Da and advances our understanding of the proteins secreted in the placenta that can protect the fetus against HIV-1 and other viral infections.
Insights
Placental macrophages secrete unique proteins, including those with antiviral properties like Peroxiredoxin 5, which may explain their lower susceptibility to HIV-1 infection compared to monocyte-derived macrophages.
Area of Science:
- Immunology
- Virology
- Proteomics
Background:
- Placental macrophages exhibit reduced HIV-1 infection rates compared to monocyte-derived macrophages (MDM).
- The underlying molecular mechanisms for this differential susceptibility remain largely unexplored.
Purpose of the Study:
- To investigate the hypothesis that placental macrophages secrete distinct proteins compared to MDM.
- To identify specific secreted proteins contributing to the observed lower HIV-1 replication in placental macrophages.
Main Methods:
- Proteomic analysis of placental macrophage and MDM supernatants cultured for 12 days.
- Protein chip assay for initial characterization.
- One-dimensional gel electrophoresis and tandem mass spectrometry for protein identification (5,000-20,000 Da range).
- Western blot validation of differentially expressed proteins.
Main Results:
- Seven significant protein peaks with differential abundance were identified between placental macrophages and MDM.
- Five proteins were validated, including higher abundance of Peroxiredoxin 5 in placental macrophage supernatants.
- Lower abundance of Cystatin B was observed in placental macrophage supernatants.
Conclusions:
- This study characterizes the placental macrophage secretome within a specific mass range (5,000-20,000 Da).
- Identified proteins, such as Peroxiredoxin 5 and Cystatin B, may play a role in conferring innate antiviral immunity within the placenta.
- Findings advance the understanding of fetal protection against HIV-1 and other viral infections through placental mechanisms.
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