Hydrogels

水凝胶
  • 文章类型: Journal Article
    用于治疗脱髓鞘疾病如多发性硬化症的细胞疗法因供体少突胶质细胞细胞制剂的低存活率而受到阻碍。导致治疗效果有限。过度的细胞死亡导致细胞内同种抗原的释放,这可能会加剧局部炎症,并可能使移植物最终发生排斥反应。这里,我们设计了具有可调粘弹性和生物活性的创新的细胞指导性剪切稀化水凝胶(STHs),用于将原代人少突胶质细胞祖细胞(hOPCs)微创递送至颤抖/rag2小鼠的大脑,先天性骨髓增生异常疾病的模型。STHs能够固定促生存信号,包括重组设计的bidomain肽和血小板衍生的生长因子。值得注意的是,STHs显著降低hOPCs的死亡率,促进髓鞘少突胶质细胞的产生,植入后12周,小鼠大脑的髓鞘形成增强。我们的结果证明了负载有生物线索的STHs改善细胞疗法治疗破坏性脊髓病的潜力。
    Cell therapy for the treatment of demyelinating diseases such as multiple sclerosis is hampered by poor survival of donor oligodendrocyte cell preparations, resulting in limited therapeutic outcomes. Excessive cell death leads to the release of intracellular alloantigens, which likely exacerbate local inflammation and may predispose the graft to eventual rejection. Here, we engineered innovative cell-instructive shear-thinning hydrogels (STHs) with tunable viscoelasticity and bioactivity for minimally invasive delivery of primary human oligodendrocyte progenitor cells (hOPCs) to the brain of a shiverer/rag2 mouse, a model of congenital hypomyelinating disease. The STHs enabled immobilization of prosurvival signals, including a recombinantly designed bidomain peptide and platelet-derived growth factor. Notably, STHs reduced the death rate of hOPCs significantly, promoted the production of myelinating oligodendrocytes, and enhanced myelination of the mouse brain 12 weeks post-implantation. Our results demonstrate the potential of STHs loaded with biological cues to improve cell therapies for the treatment of devastating myelopathies.
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  • 文章类型: Journal Article
    肠上皮的腔表面受到重要粘液层的保护,这对润滑至关重要,水合作用,促进共生细菌关系。在体外复制和研究这种复杂的粘液结构提出了相当大的挑战。为了解决这个问题,我们开发了一种水凝胶集成的微流体组织室,能够将精确的根尖剪切应力施加到在具有可调节刚度的扁平或3D结构化水凝胶支架上培养的肠模型上。该室设计用于容纳九个水凝胶支架,3D打印为平盘,其储能模量与生物活性脱细胞和甲基丙烯酸酯化小肠粘膜下层(dsIS-MA)的肠组织硬度的生理范围(〜3.7kPa)相匹配。进行计算流体动力学模拟以确认生理相关方案中平坦和3D绒毛包含支架的层流分布。该系统最初用HT29-MTX接种的水凝胶支架进行了验证,表现出加速分化,增加粘液的产生,增强了剪应力下的三维组织。这些特征性的肠组织特征对于先进的体外模型是必不可少的,因为它们对功能屏障至关重要。随后,用回肠末端的人肠干细胞(ISC)攻击该室。我们的研究结果表明,生物模拟水凝胶支架,结合生理剪切应力,促进多谱系分化,在没有化学分化触发因素的情况下,对基本标记的基因和蛋白质表达分析以及ISC的3D结构组织证明了这一点。碱性磷酸酶(ALP)活性和分泌的粘液的定量分析表明,细胞在功能上分化成肠上皮细胞和杯状细胞谱系。毫流体系统,它已经开发和优化了性能和成本效率,能够在生物模拟条件下创建和调节先进的肠道模型,包括可调基体刚度和变化的流体剪切应力。此外,容易获得和可扩展的粘液产生细胞组织模型允许全面的粘液分析和病原体相互作用和渗透的研究,从而提供了促进我们对健康和疾病中肠道粘液的理解的潜力。
    The luminal surface of the intestinal epithelium is protected by a vital mucus layer, which is essential for lubrication, hydration, and fostering symbiotic bacterial relationships. Replicating and studying this complex mucus structure in vitro presents considerable challenges. To address this, we developed a hydrogel-integrated millifluidic tissue chamber capable of applying precise apical shear stress to intestinal models cultured on flat or 3D structured hydrogel scaffolds with adjustable stiffness. The chamber is designed to accommodate nine hydrogel scaffolds, 3D-printed as flat disks with a storage modulus matching the physiological range of intestinal tissue stiffness (~3.7 kPa) from bioactive decellularized and methacrylated small intestinal submucosa (dSIS-MA). Computational fluid dynamics simulations were conducted to confirm a laminar flow profile for both flat and 3D villi-comprising scaffolds in the physiologically relevant regime. The system was initially validated with HT29-MTX seeded hydrogel scaffolds, demonstrating accelerated differentiation, increased mucus production, and enhanced 3D organization under shear stress. These characteristic intestinal tissue features are essential for advanced in vitro models as they critically contribute to a functional barrier. Subsequently, the chamber was challenged with human intestinal stem cells (ISCs) from the terminal ileum. Our findings indicate that biomimicking hydrogel scaffolds, in combination with physiological shear stress, promote multi-lineage differentiation, as evidenced by a gene and protein expression analysis of basic markers and the 3D structural organization of ISCs in the absence of chemical differentiation triggers. The quantitative analysis of the alkaline phosphatase (ALP) activity and secreted mucus demonstrates the functional differentiation of the cells into enterocyte and goblet cell lineages. The millifluidic system, which has been developed and optimized for performance and cost efficiency, enables the creation and modulation of advanced intestinal models under biomimicking conditions, including tunable matrix stiffness and varying fluid shear stresses. Moreover, the readily accessible and scalable mucus-producing cellular tissue models permit comprehensive mucus analysis and the investigation of pathogen interactions and penetration, thereby offering the potential to advance our understanding of intestinal mucus in health and disease.
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  • 文章类型: Journal Article
    原理:手术切除是实体瘤的主要治疗方法,但手术后肿瘤的高复发率和转移率提出了重大挑战。锰(Mn2+),已知通过激活cGAS-STING途径增强树突状细胞介导的癌症免疫治疗,在术后癌症管理方面具有潜力。然而,实现Mn2+的延长和局部递送以刺激免疫应答而没有全身毒性仍然是一个挑战。方法:我们开发了一种嵌入Mn2-果胶微球(MnP@DOP-Gel)的术后微环境响应型石斛多糖水凝胶。此水凝胶系统响应于ROS释放Mn2-果胶微球(MnP),和MnP在体外显示出双重作用:促进免疫原性细胞死亡和激活免疫细胞(树突状细胞和巨噬细胞)。在小鼠皮下和转移性黑色素瘤模型中评估MnP@DOP-Gel作为术后治疗的功效及其免疫激活的潜力,探讨其与抗PD1抗体的协同作用。结果:MnP@DOP-Gel表现出ROS响应性释放MnP,它可以通过诱导肿瘤细胞的免疫原性细胞死亡和激活树突状细胞和巨噬细胞来启动抗肿瘤免疫应答的级联反应来发挥双重作用。体内实验表明,植入的MnP@DOP-Gel可显着抑制残留肿瘤的生长和转移。此外,MnP@DOP-Gel和抗PD1抗体的组合在预防转移或外翻脑肿瘤生长方面显示出优异的治疗效力。结论:MnP@DOP-Gel代表了一种有希望的癌症术后无药治疗策略。利用这种Mn2+嵌入和ROS响应传输系统,它调节手术诱导的免疫反应,促进持续的抗肿瘤反应,有可能提高癌症手术治疗的有效性。
    Rationale: Surgical resection is a primary treatment for solid tumors, but high rates of tumor recurrence and metastasis post-surgery present significant challenges. Manganese (Mn2+), known to enhance dendritic cell-mediated cancer immunotherapy by activating the cGAS-STING pathway, has potential in post-operative cancer management. However, achieving prolonged and localized delivery of Mn2+ to stimulate immune responses without systemic toxicity remains a challenge. Methods: We developed a post-operative microenvironment-responsive dendrobium polysaccharide hydrogel embedded with Mn2+-pectin microspheres (MnP@DOP-Gel). This hydrogel system releases Mn2+-pectin microspheres (MnP) in response to ROS, and MnP shows a dual effect in vitro: promoting immunogenic cell death and activating immune cells (dendritic cells and macrophages). The efficacy of MnP@DOP-Gel as a post-surgical treatment and its potential for immune activation were assessed in both subcutaneous and metastatic melanoma models in mice, exploring its synergistic effect with anti-PD1 antibody. Result: MnP@DOP-Gel exhibited ROS-responsive release of MnP, which could exert dual effects by inducing immunogenic cell death of tumor cells and activating dendritic cells and macrophages to initiate a cascade of anti-tumor immune responses. In vivo experiments showed that the implanted MnP@DOP-Gel significantly inhibited residual tumor growth and metastasis. Moreover, the combination of MnP@DOP-Gel and anti-PD1 antibody displayed superior therapeutic potency in preventing either metastasis or abscopal brain tumor growth. Conclusions: MnP@DOP-Gel represents a promising drug-free strategy for cancer post-operative management. Utilizing this Mn2+-embedding and ROS-responsive delivery system, it regulates surgery-induced immune responses and promotes sustained anti-tumor responses, potentially increasing the effectiveness of surgical cancer treatments.
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  • 文章类型: Journal Article
    背景:糖尿病性骨缺损的综合管理仍然是一个巨大的临床挑战,由于其特征是炎症加重的恶劣的再生微环境。过量的活性氧(ROS),细菌感染,血管生成受损,和不平衡的骨骼稳态。因此,一个先进的多功能治疗平台,能够同时实现免疫调节,细菌消除,而组织再生是糖尿病病理环境下用于增强骨再生的迫切设计。方法和结果:本文,通过将聚多巴胺修饰的沸石咪唑酯框架-8负载的双网络水凝胶(软基质组件)引入3D打印的聚(ε-己内酯)(PCL)支架(硬基质组件)中,设计了一种光活化的软-硬组合支架系统(PGCZ)。因此,制备了基于双网络水凝胶和3D打印PCL的多功能PGCZ支架,并具有高度模拟细胞外基质的微观结构,合适的生物降解性和机械性能,和优异的光热性能,允许长期的结构稳定性和骨再生的机械支持。在周期性近红外(NIR)照射下,PGCZ的局部光热效应触发了Zn2+的按需释放,which,再加上反复的轻度高热,共同加速前成骨细胞的增殖和成骨分化,并有效抑制细菌生长和生物膜形成。此外,光活化PGCZ系统还具有出色的免疫调节和ROS清除能力,它调节巨噬细胞的M2极化并驱动功能性细胞因子分泌,从而导致原位促再生微环境,血管形成增强。体内实验进一步证明,PGCZ平台结合温和的光热治疗活性显着减弱局部炎症级联反应,启动内源性干细胞募集和新生血管形成,协调了成骨细胞/破骨细胞的平衡,最终加速糖尿病骨再生。结论:这项工作强调了光活化软硬组合系统的潜在应用,该系统可提供长期的生物物理(轻度光热刺激)和生化(按需离子输送)提示,以加速糖尿病性骨缺损的愈合。
    Background: The comprehensive management of diabetic bone defects remains a substantial clinical challenge due to the hostile regenerative microenvironment characterized by aggravated inflammation, excessive reactive oxygen species (ROS), bacterial infection, impaired angiogenesis, and unbalanced bone homeostasis. Thus, an advanced multifunctional therapeutic platform capable of simultaneously achieving immune regulation, bacterial elimination, and tissue regeneration is urgently designed for augmented bone regeneration under diabetic pathological milieu. Methods and Results: Herein, a photoactivated soft-hard combined scaffold system (PGCZ) was engineered by introducing polydopamine-modified zeolitic imidazolate framework-8-loaded double-network hydrogel (soft matrix component) into 3D-printed poly(ε-caprolactone) (PCL) scaffold (hard matrix component). The versatile PGCZ scaffold based on double-network hydrogel and 3D-printed PCL was thus prepared and features highly extracellular matrix-mimicking microstructure, suitable biodegradability and mechanical properties, and excellent photothermal performance, allowing long-term structural stability and mechanical support for bone regeneration. Under periodic near-infrared (NIR) irradiation, the localized photothermal effect of PGCZ triggers the on-demand release of Zn2+, which, together with repeated mild hyperthermia, collectively accelerates the proliferation and osteogenic differentiation of preosteoblasts and potently inhibits bacterial growth and biofilm formation. Additionally, the photoactivated PGCZ system also presents outstanding immunomodulatory and ROS scavenging capacities, which regulate M2 polarization of macrophages and drive functional cytokine secretion, thus leading to a pro-regenerative microenvironment in situ with enhanced vascularization. In vivo experiments further demonstrated that the PGCZ platform in conjunction with mild photothermal therapeutic activity remarkably attenuated the local inflammatory cascade, initiated endogenous stem cell recruitment and neovascularization, and orchestrated the osteoblast/osteoclast balance, ultimately accelerating diabetic bone regeneration. Conclusions: This work highlights the potential application of a photoactivated soft-hard combined system that provides long-term biophysical (mild photothermal stimulation) and biochemical (on-demand ion delivery) cues for accelerated healing of diabetic bone defects.
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  • 文章类型: Journal Article
    各组使用胰岛移植成功逆转糖尿病,说明了基于细胞的糖尿病治疗取得的重大成就。在临床上,几乎只使用门内胰岛递送,它不是没有障碍,包括即时血液介导的炎症反应(IBMIR),相对缺氧,随着时间的推移和功能的丧失,因此阻碍了长期的成功。在这里,我们证明了非人灵长类动物(NHP)的肝周表面作为一个潜在的胰岛传递部位最大化有利的特征,包括接近密集的血管网络以获得足够的氧合,同时避免IBMIR暴露,维持门静脉胰岛素输送,以及通过微创手术或经皮手段相对容易进入。此外,我们展示了肝周表面的靶向标测技术,允许测试多个实验条件,包括半合成水凝胶作为可能的三维框架,以提高胰岛活力。
    使用靶向定位技术在免疫抑制的食蟹猴中进行肝周同种异体胰岛细胞移植,以测试多种条件的生物相容性。移植条件包括胰岛或载体(包括水凝胶,自体血浆,和介质)单独或以各种组合。在第30天进行尸检,并进行组织病理学以评估生物相容性。免疫反应,和胰岛活力。随后,在免疫抑制的糖尿病食蟹猴中进行单次注射肝周同种异体胰岛移植。代谢评估经常测量(即,血糖,胰岛素,C-肽)直到最终的移植物恢复用于组织病理学。
    靶向定位生物相容性研究表明,胰岛-血浆结构有轻度炎症变化;然而,在水凝胶载体影响胰岛活力的情况下,周围部位可见明显的炎症细胞浸润和纤维化。在糖尿病性NHP中,使用自体血浆载体的肝周胰岛移植显示了长达6个月的延长功能,并改善了血糖,外源性胰岛素需求,和HbA1c。这些胰岛的组织病理学与轻度胰岛周围单核细胞浸润有关,没有排斥的证据。
    肝周表面作为胰岛细胞移植的可行部位,显示出持续6个月的胰岛功能。有针对性的作图方法允许同时测试多种条件,以评估该部位对生物材料的免疫反应。与传统的门内注射相比,肝周部位是一种微创方法,可以恢复移植物并避免IBMIR。
    UNASSIGNED: Successful diabetes reversal using pancreatic islet transplantation by various groups illustrates the significant achievements made in cell-based diabetes therapy. While clinically, intraportal islet delivery is almost exclusively used, it is not without obstacles, including instant blood-mediated inflammatory reaction (IBMIR), relative hypoxia, and loss of function over time, therefore hindering long-term success. Here we demonstrate the perihepatic surface of non-human primates (NHPs) as a potential islet delivery site maximizing favorable characteristics, including proximity to a dense vascular network for adequate oxygenation while avoiding IBMIR exposure, maintenance of portal insulin delivery, and relative ease of accessibility through minimally invasive surgery or percutaneous means. In addition, we demonstrate a targeted mapping technique of the perihepatic surface, allowing for the testing of multiple experimental conditions, including a semi-synthetic hydrogel as a possible three-dimensional framework to improve islet viability.
    UNASSIGNED: Perihepatic allo-islet cell transplants were performed in immunosuppressed cynomolgus macaques using a targeted mapping technique to test multiple conditions for biocompatibility. Transplant conditions included islets or carriers (including hydrogel, autologous plasma, and media) alone or in various combinations. Necropsy was performed at day 30, and histopathology was performed to assess biocompatibility, immune response, and islet viability. Subsequently, single-injection perihepatic allo-islet transplant was performed in immunosuppressed diabetic cynomolgus macaques. Metabolic assessments were measured frequently (i.e., blood glucose, insulin, C-peptide) until final graft retrieval for histopathology.
    UNASSIGNED: Targeted mapping biocompatibility studies demonstrated mild inflammatory changes with islet-plasma constructs; however, significant inflammatory cell infiltration and fibrosis were seen surrounding sites with the hydrogel carrier affecting islet viability. In diabetic NHPs, perihepatic islet transplant using an autologous plasma carrier demonstrated prolonged function up to 6 months with improvements in blood glucose, exogenous insulin requirements, and HbA1c. Histopathology of these islets was associated with mild peri-islet mononuclear cell infiltration without evidence of rejection.
    UNASSIGNED: The perihepatic surface serves as a viable site for islet cell transplantation demonstrating sustained islet function through 6 months. The targeted mapping approach allows for the testing of multiple conditions simultaneously to evaluate immune response to biomaterials at this site. Compared to traditional intraportal injection, the perihepatic site is a minimally invasive approach that allows the possibility for graft recovery and avoids IBMIR.
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  • 文章类型: Journal Article
    节段性骨缺损,由于创伤等因素,肿瘤切除,先天性畸形,提出了重大的临床挑战,通常需要复杂的重建策略。负载有多种骨生成促进成分的水凝胶已成为修复骨缺损的有希望的工具。虽然先前已经证明了Piezo1激动剂Yoda1的成骨潜力,其疏水性质对有效加载到水凝胶基质上提出了挑战。在这项研究中,我们通过使用Yoda1预处理的骨髓间充质干细胞(BMSCs)外泌体(Exo-Yoda1)和BMSCs(Exo-MSC)外泌体来应对这一挑战.相对而言,与对照组和Exo-MSC处理的对应物相比,Exo-Yoda1处理的BMSC表现出增强的成骨能力。值得注意的是,Exo-Yoda1处理的细胞表现出与Yoda1本身相似的功能。转录组分析显示成骨相关信号通路的激活,表明Yoda1介导的信号如ErK的潜在转导,这项研究验证了这一发现。此外,我们成功地将Exo-Yoda1整合到明胶甲基丙烯酰(GelMA)/甲基丙烯酸海藻酸钠(SAMA)/β-磷酸三钙(β-TCP)水凝胶中。这些加载Exo-Yoda1的水凝胶在皮下异位成骨裸鼠模型和大鼠颅骨骨缺损模型中显示出增强的成骨作用。总之,我们的研究引入了Exo-Yoda1负载的GELMA/SAMA/β-TCP水凝胶作为促进成骨的有希望的方法。这种创新策略对于骨缺损重建领域的未来广泛临床应用具有重要意义。
    Segmental bone defects, arising from factors such as trauma, tumor resection, and congenital malformations, present significant clinical challenges that often necessitate complex reconstruction strategies. Hydrogels loaded with multiple osteogenesis-promoting components have emerged as promising tools for bone defect repair. While the osteogenic potential of the Piezo1 agonist Yoda1 has been demonstrated previously, its hydrophobic nature poses challenges for effective loading onto hydrogel matrices.In this study, we address this challenge by employing Yoda1-pretreated bone marrow-derived mesenchymal stem cell (BMSCs) exosomes (Exo-Yoda1) alongside exosomes derived from BMSCs (Exo-MSC). Comparatively, Exo-Yoda1-treated BMSCs exhibited enhanced osteogenic capabilities compared to both control groups and Exo-MSC-treated counterparts. Notably, Exo-Yoda1-treated cells demonstrated similar functionality to Yoda1 itself. Transcriptome analysis revealed activation of osteogenesis-associated signaling pathways, indicating the potential transduction of Yoda1-mediated signals such as ErK, a finding validated in this study. Furthermore, we successfully integrated Exo-Yoda1 into gelatin methacryloyl (GelMA)/methacrylated sodium alginate (SAMA)/β-tricalcium phosphate (β-TCP) hydrogels. These Exo-Yoda1-loaded hydrogels demonstrated augmented osteogenesis in subcutaneous ectopic osteogenesis nude mice models and in rat skull bone defect model. In conclusion, our study introduces Exo-Yoda1-loaded GELMA/SAMA/β-TCP hydrogels as a promising approach to promoting osteogenesis. This innovative strategy holds significant promise for future widespread clinical applications in the realm of bone defect reconstruction.
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  • 文章类型: Journal Article
    长期重建造血干细胞(LT-HSC)用于通过干细胞移植治疗血液疾病。LT-HSC的极低丰度及其在体外培养过程中的快速分化阻碍了其临床应用。以前使用基质饲养层的发展,定义的培养基鸡尾酒,生物工程使HSC在培养中得以扩展,但主要是短期的HSC和祖细胞群,以幼稚的LT-HSC为代价。这里,我们报告了一个生物工程LT-HSC维持生态位的创建,重建生理细胞外基质组织,使用柔软的I型胶原水凝胶驱动血管周围基质细胞(PerSC)中的巢蛋白表达。我们证明了Nestin,由支持HSC的骨髓基质细胞表达,是细胞保护的,通过调节新陈代谢,对于PerSC中HIF-1α的表达是重要的。当将CD34+veHSC添加到包含表达巢蛋白/HIF-1α的PerSC的生物工程生态位中时,LT-HSC数量保持正常克隆和体内重建潜力,没有媒体补充。我们提供了概念证明,我们的生物工程生态位可以支持CRISPR编辑的HSC的存活。LT-HSC离体的成功编辑可以对血液疾病的治疗具有潜在影响。
    Long-term reconstituting haematopoietic stem cells (LT-HSCs) are used to treat blood disorders via stem cell transplantation. The very low abundance of LT-HSCs and their rapid differentiation during in vitro culture hinders their clinical utility. Previous developments using stromal feeder layers, defined media cocktails, and bioengineering have enabled HSC expansion in culture, but of mostly short-term HSCs and progenitor populations at the expense of naive LT-HSCs. Here, we report the creation of a bioengineered LT-HSC maintenance niche that recreates physiological extracellular matrix organisation, using soft collagen type-I hydrogels to drive nestin expression in perivascular stromal cells (PerSCs). We demonstrate that nestin, which is expressed by HSC-supportive bone marrow stromal cells, is cytoprotective and, via regulation of metabolism, is important for HIF-1α expression in PerSCs. When CD34+ve HSCs were added to the bioengineered niches comprising nestin/HIF-1α expressing PerSCs, LT-HSC numbers were maintained with normal clonal and in vivo reconstitution potential, without media supplementation. We provide proof-of-concept that our bioengineered niches can support the survival of CRISPR edited HSCs. Successful editing of LT-HSCs ex vivo can have potential impact on the treatment of blood disorders.
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  • 文章类型: Journal Article
    肌腱损伤是常见的骨科疾病,具有挑战性的愈合轨迹,尤其是在跟腱病痛的情况下。肌腱损伤的愈合轨迹往往是次优的,由于肌腱组织固有的低代谢活性和血管形成,导致瘢痕形成和功能损害。由于迫切需要有效的干预措施,努力探索生物材料以增强肌腱愈合。然而,组织工程方法在优化组织支架和纳米医学策略方面面临障碍。为了驾驭这些挑战,在这项研究中,制备了一种与人脐静脉内皮细胞衍生的外泌体(HUVECs-Exos)混合的可注射水凝胶,并命名为H-Exos-gel。旨在增强肌腱修复。在我们涉及60只大鼠跟腱损伤模型的研究中,我们通过在2周和4周进行的组织学评估来研究H-Exos-gel的功效,在4周进行的行为评估显示其增强跟腱机械强度的能力,调节炎症,促进肌腱再生和功能恢复。机械上,H-Exos-gel通过抑制炎症相关途径和促进增殖相关途径来调节巨噬细胞和肌腱源性干细胞(TDSC)的细胞行为。我们的发现描述了H-Exos-gel是肌腱愈合的可行生物活性介质,预示着临床上改善肌腱损伤的有希望的途径。
    Tendon injuries are common orthopedic ailments with a challenging healing trajectory, especially in cases like the Achilles tendon afflictions. The healing trajectory of tendon injuries is often suboptimal, leading to scar formation and functional impairment due to the inherent low metabolic activity and vascularization of tendon tissue. As pressing is needed for effective interventions, efforts are made to explore biomaterials to augment tendon healing. However, tissue engineering approaches face hurdles in optimizing tissue scaffolds and nanomedical strategies. To navigate these challenges, an injectable hydrogel amalgamated with human umbilical vein endothelial cells-derived exosomes (HUVECs-Exos) was prepared and named H-Exos-gel in this study, aiming to enhance tendon repair. In our research involving a model of Achilles tendon injuries in 60 rats, we investigated the efficacy of H-Exos-gel through histological assessments performed at 2 and 4 weeks and behavioral assessments conducted at the 4-week mark revealed its ability to enhance the Achilles tendon\'s mechanical strength, regulate inflammation and facilitate tendon regeneration and functional recovery. Mechanically, the H-Exos-gel modulated the cellular behaviors of macrophages and tendon-derived stem cells (TDSCs) by inhibiting inflammation-related pathways and promoting proliferation-related pathways. Our findings delineate that the H-Exos-gel epitomizes a viable bioactive medium for tendon healing, heralding a promising avenue for the clinical amelioration of tendon injuries.
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  • 文章类型: Journal Article
    养殖肉正在成为一种新型食品,可以以可持续的方式提供动物蛋白质。许多先前的研究采用各种类型的支架来开发具有与屠宰肉相似特性的养殖肉。然而,没有讨论重要的特性,如风味,即使它们决定了食物的质量。风味特征根据在烹饪时通过美拉德反应产生挥发性化合物的氨基酸和糖的量和类型而显著变化。在这项研究中,开发了一种风味可切换的支架,仅在烹饪温度模仿屠宰肉类的美拉德反应时释放肉类风味化合物。通过将可转换风味化合物(SFC)引入明胶基水凝胶中,我们制造了一种功能性支架,可以增强养殖肉的芳香特性。温度响应性SFC在细胞培养期间稳定地保持在支架中,并且可以在烹饪温度下释放。令人惊讶的是,用这种风味可切换的支架制造的养殖肉表现出与牛肉相似的风味模式。这项研究提出了一种策略,通过开发一种功能性支架来开发具有增强的感官特征的培养肉,该支架可以模仿传统肉的天然烹饪风味。
    Cultured meat is emerging as a new type of food that can provide animal protein in a sustainable way. Many previous studies employed various types of scaffolds to develop cultured meat with similar properties to slaughtered meat. However, important properties such as flavor were not discussed, even though they determine the quality of food. Flavor characteristics vary dramatically depending on the amount and types of amino acids and sugars that produce volatile compounds through the Maillard reaction upon cooking. In this study, a flavor-switchable scaffold is developed to release meaty flavor compounds only upon cooking temperature mimicking the Maillard reaction of slaughtered meat. By introducing a switchable flavor compound (SFC) into a gelatin-based hydrogel, we fabricate a functional scaffold that can enhance the aromatic properties of cultured meat. The temperature-responsive SFC stably remains in the scaffold during the cell culture period and can be released at the cooking temperature. Surprisingly, cultured meat fabricated with this flavor-switchable scaffold exhibits a flavor pattern similar to that of beef. This research suggests a strategy to develop cultured meat with enhanced sensorial characteristics by developing a functional scaffold which can mimic the natural cooking flavors of conventional meat.
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  • 文章类型: Journal Article
    水凝胶被广泛用作组织支架的生物材料,它们的受控制造一直是广泛调查的主题。然而,通过配方控制繁琐的机械性能调节过程阻碍了它们在多种组织支架中的应用。为了克服这个限制,我们提出了一个两步过程来实现机械模量在宽范围内的简单调整,通过组合数字光处理(DLP)和后处理步骤。紫外线固化水凝胶(聚丙烯酰胺-藻酸盐)通过DLP3D打印,具有创建复杂3D图案的能力。随后用Fe3离子浴进行后处理会引起水凝胶支架的二次交联,通过浸泡在具有不同Fe3+浓度的溶液中根据需要调整模量。这种创新的两步工艺提供了高精度(10μm)和宽模量调节能力(15.8-345kPa),覆盖人体广泛的组织。作为一个实际的示范,打印具有组织模拟模式的水凝胶支架,用于培养心脏组织和血管支架,能有效支持组织生长并诱导组织形态。
    Hydrogels are extensively explored as biomaterials for tissue scaffolds, and their controlled fabrication has been the subject of wide investigation. However, the tedious mechanical property adjusting process through formula control hindered their application for diverse tissue scaffolds. To overcome this limitation, we proposed a two-step process to realize simple adjustment of mechanical modulus over a broad range, by combining digital light processing (DLP) and post-processing steps. UV-curable hydrogels (polyacrylamide-alginate) are 3D printed via DLP, with the ability to create complex 3D patterns. Subsequent post-processing with Fe3+ ions bath induces secondary crosslinking of hydrogel scaffolds, tuning the modulus as required through soaking in solutions with different Fe3+ concentrations. This innovative two-step process offers high-precision (10 μm) and broad modulus adjusting capability (15.8-345 kPa), covering a broad range of tissues in the human body. As a practical demonstration, hydrogel scaffolds with tissue-mimicking patterns were printed for cultivating cardiac tissue and vascular scaffolds, which can effectively support tissue growth and induce tissue morphologies.
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