کد مقاله کد نشریه سال انتشار مقاله انگلیسی نسخه تمام متن
5629204 1580151 2017 14 صفحه PDF دانلود رایگان
عنوان انگلیسی مقاله ISI
Research PaperNeurotoxic mechanisms of paclitaxel are local to the distal axon and independent of transport defects
ترجمه فارسی عنوان
مکانیسم های نوترکیب مکانیکی بسته لیتاکسیل به محل آکسون دندانی و مستقل از نقص حمل و نقل است
موضوعات مرتبط
علوم زیستی و بیوفناوری علم عصب شناسی عصب شناسی
چکیده انگلیسی


- Paclitaxel stops growth and induces retraction bulbs in cultured sensory neurons.
- Microtubule hyperstabilization is the likely cause of paclitaxel neurotoxicity.
- Tubulin posttranslational modifications and transport defects are not implicated.
- The distal-most portion of sensory axons is particularly vulnerable to paclitaxel.
- Reduced plasticity of epidermal nerve fibers may initiate the neurodegeneration.

Chemotherapy-induced peripheral neuropathy (CIPN) is a dose-limiting side effect of paclitaxel and other chemotherapeutic agents. Paclitaxel binds and stabilizes microtubules, but the cellular mechanisms that underlie paclitaxel's neurotoxic effects are not well understood. We therefore used primary cultures of adult murine dorsal root ganglion neurons, the cell type affected in patients, to examine leading hypotheses to explain paclitaxel neurotoxicity. We address the role of microtubule hyperstabilization and its downstream effects. Paclitaxel administered at 10-50 nM for 1-3 days induced retraction bulbs at the tips of axons and arrested axon growth without triggering axon fragmentation or cell death. By correlating the toxic effects and microtubule stabilizing activity of structurally different microtubule stabilizing compounds, we confirmed that microtubule hyperstabilization, rather than an off-target effect, is the likely primary cause of paclitaxel neurotoxicity. We examined potential downstream consequences of microtubule hyperstabilization and found that changes in levels of tubulin posttranslational modifications, although present after paclitaxel exposure, are not implicated in the paclitaxel neurotoxicity we observed in the cultures. Additionally, defects in axonal transport were not implicated as an early, causative mechanism of paclitaxel's toxic effects on dorsal root ganglion neurons. By using microfluidic chambers to selectively treat different parts of the axon with paclitaxel, we found that the distal axon was primarily vulnerable to paclitaxel, indicating that paclitaxel acts directly on the distal axon to induce degenerative effects. Together, our findings point to local effects of microtubule hyperstabilization on the distal-most portion of the axon as an early mediator of paclitaxel neurotoxicity. Because sensory neurons have a unique and ongoing requirement for distal growth in order to reinnervate the epidermis as it turns over, we propose that the ability of paclitaxel to arrest their growth accounts for the selective vulnerability of sensory neurons to paclitaxel neurotoxicity.

ناشر
Database: Elsevier - ScienceDirect (ساینس دایرکت)
Journal: Experimental Neurology - Volume 288, February 2017, Pages 153-166
نویسندگان
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