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Updated: Aug 18, 2025

Measuring Axonal Cargo Transport in Mouse Primary Cortical Cultured Neurons
Published on: February 24, 2023
APC couples neuronal mRNAs to multiple kinesins, EB1, and shrinking microtubule ends for bidirectional mRNA motility
Sebastian J Baumann1, Julia Grawenhoff1, Elsa C Rodrigues1
1Centre for Genomic Regulation, The Barcelona Institute of Science and Technology, Barcelona 08003, Spain.
Abstract:
Understanding where in the cytoplasm mRNAs are translated is increasingly recognized as being as important as knowing the timing and level of protein expression. mRNAs are localized via active motor-driven transport along microtubules (MTs) but the underlying essential factors and dynamic interactions are largely unknown. Using biochemical in vitro reconstitutions with purified mammalian proteins, multicolor TIRF-microscopy, and interaction kinetics measurements, we show that adenomatous polyposis coli (APC) enables kinesin-1- and kinesin-2-based mRNA transport, and that APC is an ideal adaptor for long-range mRNA transport as it forms highly stable complexes with 3'UTR fragments of several neuronal mRNAs (APC-RNPs). The kinesin-1 KIF5A binds and transports several neuronal mRNP components such as FMRP, PURα and mRNA fragments weakly, whereas the transport frequency of the mRNA fragments is significantly increased by APC. APC-RNP-motor complexes can assemble on MTs, generating highly processive mRNA transport events. We further find that end-binding protein 1 (EB1) recruits APC-RNPs to dynamically growing MT ends and APC-RNPs track shrinking MTs, producing MT minus-end-directed RNA motility due to the high dwell times of APC on MTs. Our findings establish APC as a versatile mRNA-kinesin adaptor and a key factor for the assembly and bidirectional movement of neuronal transport mRNPs.
Insights
Adenomatous polyposis coli (APC) acts as a crucial adaptor, enabling kinesin motor proteins to transport messenger RNAs (mRNAs) along microtubules. This discovery sheds light on the mechanisms of mRNA localization and neuronal transport.
Area of Science:
- Cell Biology
- Molecular Neuroscience
- Biochemistry
Background:
- mRNA localization in the cytoplasm is critical for protein expression, akin to its timing and level.
- The molecular mechanisms and key factors governing motor-driven mRNA transport along microtubules remain largely unknown.
Purpose of the Study:
- To elucidate the role of adenomatous polyposis coli (APC) in mRNA transport along microtubules.
- To identify the interactions between APC, motor proteins, and neuronal mRNAs during transport.
Main Methods:
- In vitro reconstitution assays using purified mammalian proteins.
- Multicolor total internal reflection fluorescence (TIRF) microscopy.
- Kinetics measurements of protein-RNA and protein-motor interactions.
Main Results:
- APC facilitates kinesin-1 and kinesin-2 mediated mRNA transport, forming stable complexes with neuronal mRNA 3'UTRs (APC-RNPs).
- APC significantly enhances the transport frequency of mRNA fragments by kinesin-1 (KIF5A), enabling processive transport events.
- End-binding protein 1 (EB1) recruits APC-RNPs to growing microtubules, and APC-RNPs exhibit minus-end-directed motility on shrinking microtubules.
Conclusions:
- APC functions as a versatile adaptor protein, crucial for assembling and directing the bidirectional movement of neuronal transport mRNPs.
- APC's interaction with microtubules and motor proteins is key to long-range mRNA transport essential for neuronal function.
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