Related Experiment Video
Updated: Nov 5, 2025

Amplification, Next-generation Sequencing, and Genomic DNA Mapping of Retroviral Integration Sites
Published on: March 22, 2016
Moloney Murine Leukemia Virus p12 Is Required for Histone Loading onto Retroviral DNAs
Gary Z Wang1, Stephen P Goff2,3,4
1Department of Pathology and Cell Biology, Columbia University Medical Center, New York, New York, USA.
Abstract:
During retrovirus infection, a histone-free DNA copy of the viral RNA genome is synthesized and rapidly loaded with nucleosomes de novo upon nuclear entry. The potential role of viral accessory proteins in histone loading onto retroviral DNAs has not been extensively investigated. The p12 protein of Moloney murine leukemia virus (MMLV) is a virion protein that is critical for tethering the incoming viral DNA to host chromatin in the early stages of infection. Infection by virions containing a mutant p12 (PM14) defective in chromatin tethering results in the formation of viral DNAs that do not accumulate in the nucleus. In this report, we show that viral DNAs of these mutants are not loaded with histones. Moreover, the DNA genomes delivered by mutant p12 show prolonged association with viral structural proteins nucleocapsid (NC) and capsid (CA). The histone-poor viral DNA genomes do not become associated with the host RNA polymerase II machinery. These findings provide insights into fundamental aspects of retroviral biology, indicating that tethering to host chromatin by p12 and retention in the nucleus are required to allow loading of histones onto the viral DNA. IMPORTANCE Incoming retroviral DNAs are rapidly loaded with nucleosomal histones upon entry into the nucleus and before integration into the host genome. The entry of murine leukemia virus DNA into the nucleus occurs only upon dissolution of the nuclear membrane in mitosis, and retention in the nucleus requires the action of a viral protein, p12, which tethers the DNA to host chromatin. Data presented here show that the tethering activity of p12 is required for the loading of histones onto the viral DNA. p12 mutants lacking tethering activity fail to acquire histones, retain capsid and nucleocapsid proteins, and are poorly transcribed. The work defines a new requirement for a viral protein to allow chromatinization of viral DNA.
Insights
Moloney murine leukemia virus (MMLV) p12 protein tethers viral DNA to host chromatin, enabling histone loading. Mutants lacking this function fail to acquire histones and are poorly transcribed, revealing a key step in retroviral DNA processing.
Area of Science:
- Retroviral biology
- Epigenetics
- Molecular virology
Background:
- Retroviral DNA is synthesized and rapidly forms nucleosomes after entering the nucleus.
- The role of viral accessory proteins in histone loading is not well understood.
- The Moloney murine leukemia virus (MMLV) p12 protein tethers viral DNA to host chromatin.
Purpose of the Study:
- To investigate the role of the MMLV p12 protein in histone loading onto viral DNA.
- To determine if p12's chromatin tethering function is necessary for histone acquisition.
Main Methods:
- Analysis of viral DNA from MMLV wild-type and p12 mutant infections.
- Assessment of histone loading, association with viral structural proteins (NC, CA), and host RNA polymerase II.
Main Results:
- MMLV p12 mutants defective in chromatin tethering failed to accumulate viral DNA in the nucleus.
- These mutant viral DNAs were not loaded with histones.
- Mutant viral DNAs retained association with nucleocapsid (NC) and capsid (CA) proteins.
- Histone-poor viral DNA genomes did not associate with host RNA polymerase II.
Conclusions:
- Chromatin tethering by the MMLV p12 protein is essential for histone loading onto viral DNA.
- Nuclear retention mediated by p12 is required for viral DNA chromatinization.
- p12's tethering function is critical for subsequent viral DNA processing and transcription.
Related Concept Videos
Mechanisms of Retrovirus-induced Cancers
Retroviruses
Size and Structure of Viral Genomes
Retrovirus Life Cycles
Non-LTR Retrotransposons

