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Microtubule assembly and turnover in growing axons
1Department of Anatomy and Cell Biology, Temple University School of Medicine, Philadelphia, Pennsylvania 19140, USA.
Abstract:
We have shown previously that axonal microtubules (MTs) are composite, consisting of two distinct domains that differ in their content of tyrosinated alpha-tubulin (tyr-tub). One domain is poor in tyr-tub and is situated at the minus end of the MT. The other domain is rich in tyr-tub and extends from the plus end of the tyr-tub-poor domain to the end of the MT. We have proposed that the spatial variation in the relative content of tyr-tub along individual MTs reflects corresponding variations in their dynamic properties. The present experiments have tested this hypothesis directly by microinjecting biotin-labeled tubulin (Bt-tub) into cultured sympathetic neurons and then quantifying the appearance of Bt-tub in the tyr-tub-rich and tyr-tub-poor polymer of the axon. Bt-tub appeared in axonal MTs with a half-life (t1/2) of approximately 2.2 hr. This time course reflected an average of two distinct components corresponding to the tyr-tub-rich and tyr-tub-poor polymer that had apparent t1/2 values of approximately 1.3 and 3.3 hr, respectively. In individual MTs, Bt-tub first appeared in the tyr-tub-rich domain and then only later appeared in the tyr-tub-poor domain. Also, the appearance of Bt-tub in the tyr-tub-rich polymer typically began precisely at its origin from the tyr-tub-poor domain, indicating that the tyr-tub-poor polymer is assembly-competent and nucleates the assembly of tyr-tub-rich polymer locally within the axon. The stability properties of axonal MTs are discussed in terms of organizing MT assembly locally in the axon and generating long MTs for growing long axons.
Insights
Axonal microtubules have two domains: one poor in tyrosinated alpha-tubulin (tyr-tub) and another rich in tyr-tub. This study shows the tyr-tub-poor domain nucleates assembly of the tyr-tub-rich domain, influencing microtubule dynamics.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Axonal microtubules (MTs) exhibit distinct domains with varying tyrosinated alpha-tubulin (tyr-tub) content.
- A tyr-tub-poor domain is located at the MT minus end, while a tyr-tub-rich domain extends towards the plus end.
- Spatial variation in tyr-tub content is hypothesized to correlate with MT dynamic properties.
Purpose of the Study:
- To directly test the hypothesis that tyr-tub distribution reflects MT dynamic properties.
- To investigate the assembly and stability characteristics of different MT domains within axons.
Main Methods:
- Microinjection of biotin-labeled tubulin (Bt-tub) into cultured sympathetic neurons.
- Quantification of Bt-tub incorporation into tyr-tub-rich and tyr-tub-poor MT domains.
- Analysis of Bt-tub appearance time course and half-life (t1/2) in both domains.
Main Results:
- Bt-tub incorporation into axonal MTs showed an average t1/2 of approximately 2.2 hr.
- Distinct t1/2 values were observed for the tyr-tub-rich (approx. 1.3 hr) and tyr-tub-poor (approx. 3.3 hr) domains.
- Bt-tub first appeared in the tyr-tub-rich domain, later in the tyr-tub-poor domain, indicating a specific assembly sequence.
- The tyr-tub-poor domain was identified as assembly-competent and nucleating the tyr-tub-rich domain.
Conclusions:
- The tyr-tub-poor domain serves as a nucleation site for the tyr-tub-rich domain within the axon.
- Local MT assembly organization contributes to the generation of long microtubules required for axonal growth.
- Differential stability properties of MT domains are crucial for axonal development and function.