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首页> 外文期刊>Journal of tissue engineering and regenerative medicine >Present and future of tissue engineering scaffolds for dentin-pulp complex regeneration
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Present and future of tissue engineering scaffolds for dentin-pulp complex regeneration

机译:牙本质 - 纸浆复杂再生组织工程支架的现状与未来

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摘要

More than two thirds of the global population suffers from tooth decay, which results in cavities with various levels of lesion severity. Clinical interventions to treat tooth decay range from simple coronal fillings to invasive root canal treatment. Pulp capping is the only available clinical option to maintain the pulp vitality in deep lesions, but irreversible pulp inflammation and reinfection are frequent outcomes for this treatment. When affected pulp involvement is beyond repair, the dentist has to perform endodontic therapy leaving the tooth non-vital and brittle. On-going research strategies have failed to overcome the limitations of existing pulp capping materials so that healthy and progressive regeneration of the injured tissues is attained. Preserving pulp vitality is crucial for tooth homeostasis and durability, and thus, there is a critical need for clinical interventions that enable regeneration of the dentin-pulp complex to rescue millions of teeth annually. The identification and development of appropriate biomaterials for dentin-pulp scaffolds are necessary to optimize clinical approaches to regenerate these hybrid dental tissues. Likewise, a deep understanding of the interactions between the micro-environment, growth factors, and progenitor cells will provide design basis for the most fitting scaffolds for this purpose. In this review, we first introduce the long-lasting clinical dental problem of rescuing diseased tooth vitality, the limitations of current clinical therapies and interventions to restore the damaged tissues, and the need for new strategies to fully revitalize the tooth. Then, we comprehensively report on the characteristics of the main materials of naturally-derived and synthetically-engineered polymers, ceramics, and composite scaffolds as well as their use in dentin-pulp complex regeneration strategies. Finally, we present a series of innovative smart polymeric biomaterials with potential to overcome dentin-pulp complex regeneration challenges.
机译:超过三分之二的全球人口遭受蛀牙,导致具有各种病变严重程度的腔。从简单的冠状馅料治疗牙齿衰变对侵入根管治疗的临床干预。纸浆封装是唯一可用的临床选择,以维持深部病变中的纸浆活力,但不可逆的纸浆炎症和再感染是这种治疗的频繁结果。当受影响的纸浆参与超越修复时,牙医必须进行牙髓疗法,使牙齿无关紧要和脆弱。正在进行的研究策略未能克服现有纸浆覆盖材料的局限性,以便达到受伤组织的健康和渐进式再生。保存纸浆活力对于牙齿稳态和耐久性至关重要,因此,对临床干预的临床干预有危急需要,使得牙本质 - 纸浆综合体的再生每年抢救数百万颗牙齿。鉴定和开发用于牙本质 - 纸浆支架的适当生物材料是优化临床方法来再生这些杂交牙科组织的临床方法。同样地,对微环境,生长因子和祖细胞之间的相互作用的深刻理解将为此目的最适合的支架提供设计基础。在这篇综述中,我们首先介绍了拯救患病牙齿活力的长期临床牙科问题,目前临床疗法的局限性和恢复受损组织的干预措施,以及新策略的需要充分振兴牙齿。然后,我们全面地报告了天然和综合工程聚合物,陶瓷和复合支架的主要材料的特性以及它们在牙本质 - 纸浆复合物再生策略中的应用。最后,我们提出了一系列创新的智能聚合物生物材料,其潜力克服了牙本质 - 纸浆复杂再生挑战。

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