Scaffold-free techniques in the developmental tissue engineering area are designed to mimic in vivo embryonic processes with the aim of biofabricating,in vitro,tissues with more authentic properties.Cell clusters call...Scaffold-free techniques in the developmental tissue engineering area are designed to mimic in vivo embryonic processes with the aim of biofabricating,in vitro,tissues with more authentic properties.Cell clusters called spheroids are the basis for scaffold-free tissue engineering.In this review,we explore the use of spheroids from adult mesenchymal stem/stromal cells as a model in the developmental engineering area in order to mimic the developmental stages of cartilage and bone tissues.Spheroids from adult mesenchymal stromal/stem cells lineages recapitulate crucial events in bone and cartilage formation during embryogenesis,and are capable of spontaneously fusing to other spheroids,making them ideal building blocks for bone and cartilage tissue engineering.Here,we discuss data from ours and other labs on the use of adipose stromal/stem cell spheroids in chondrogenesis and osteogenesis in vitro.Overall,recent studies support the notion that spheroids are ideal"building blocks"for tissue engineering by“bottom-up”approaches,which are based on tissue assembly by advanced techniques such as three-dimensional bioprinting.Further studies on the cellular and molecular mechanisms that orchestrate spheroid fusion are now crucial to support continued development of bottom-up tissue engineering approaches such as three-dimensional bioprinting.展开更多
采用聚焦离子束定点切割技术(Focused ion beam,FIB),透射电镜(Transmission electron microscopy,TEM)、高角度环形暗场扫描透射电镜(High angle annular dark field scanning transmission electron microscopy,HAADF-STEM)和扫描电镜...采用聚焦离子束定点切割技术(Focused ion beam,FIB),透射电镜(Transmission electron microscopy,TEM)、高角度环形暗场扫描透射电镜(High angle annular dark field scanning transmission electron microscopy,HAADF-STEM)和扫描电镜(Scanning electron microscopy,SEM)等技术手段,对Mg-7Gd-5Y-1Nd-2Zn-0.5Zr合金铸态及(515℃,48 h)均匀化态的组织形貌进行观察分析。结果表明:铸态合金晶界共晶组织中含有(Mg,Zn)_(3)RE相(FCC,a=0.72 nm)、Mg_(5)(RE,Zn)相(FCC,a=2.24 nm)及块状长周期堆垛有序(Long-period stacking ordered,LPSO)相。其中LPSO相主要为18R结构,存在少量14H结构,局部区域存在少量不完整周期的LPSO结构;此外合金中存在分布于共晶相附近的微米级富RE相以及分布于晶粒内部的微米级富Zr颗粒。经过(515℃,48 h)均匀化热处理,晶界(Mg,Zn)_(3)RE相和Mg_(5)(RE,Zn)相完全回溶,残留相主要为14H-LPSO相,局部区域存在具有不同晶体结构的LPSO过渡相。在铸态合金的晶粒内部,沿[1120]_(a)晶带轴观察,发现存在几个原子面至纳米尺度的LPSO构建块,由不同数量的LPSO构建块单元(4个RE/Zn原子层)及Mg原子层交替堆垛构成,RE/Zn与Mg原子层堆垛次序不具备完整周期性;均匀化热处理后,晶内的LPSO构建块几乎回溶,仅剩下极少量单个LPSO构建块单元。沿[0001]_(a)晶带轴观察,晶粒内部存在多种分布方式的富RE/Zn原子柱,为Mg-Gd-Y系镁合金时效过程β′析出序列中GP区的早期结构。展开更多
基金the Coordination for the Improvement of Higher Education Personnel(CAPES),No.88882.366181/2019-01the Carlos Chagas Filho Foundation for Research Support of the State of Rio de Janeiro(FAPERJ),No.E-26/202.682/2018National Council for Scientific and Technological Development(CNPq),No.467513/2014-7
文摘Scaffold-free techniques in the developmental tissue engineering area are designed to mimic in vivo embryonic processes with the aim of biofabricating,in vitro,tissues with more authentic properties.Cell clusters called spheroids are the basis for scaffold-free tissue engineering.In this review,we explore the use of spheroids from adult mesenchymal stem/stromal cells as a model in the developmental engineering area in order to mimic the developmental stages of cartilage and bone tissues.Spheroids from adult mesenchymal stromal/stem cells lineages recapitulate crucial events in bone and cartilage formation during embryogenesis,and are capable of spontaneously fusing to other spheroids,making them ideal building blocks for bone and cartilage tissue engineering.Here,we discuss data from ours and other labs on the use of adipose stromal/stem cell spheroids in chondrogenesis and osteogenesis in vitro.Overall,recent studies support the notion that spheroids are ideal"building blocks"for tissue engineering by“bottom-up”approaches,which are based on tissue assembly by advanced techniques such as three-dimensional bioprinting.Further studies on the cellular and molecular mechanisms that orchestrate spheroid fusion are now crucial to support continued development of bottom-up tissue engineering approaches such as three-dimensional bioprinting.
文摘采用聚焦离子束定点切割技术(Focused ion beam,FIB),透射电镜(Transmission electron microscopy,TEM)、高角度环形暗场扫描透射电镜(High angle annular dark field scanning transmission electron microscopy,HAADF-STEM)和扫描电镜(Scanning electron microscopy,SEM)等技术手段,对Mg-7Gd-5Y-1Nd-2Zn-0.5Zr合金铸态及(515℃,48 h)均匀化态的组织形貌进行观察分析。结果表明:铸态合金晶界共晶组织中含有(Mg,Zn)_(3)RE相(FCC,a=0.72 nm)、Mg_(5)(RE,Zn)相(FCC,a=2.24 nm)及块状长周期堆垛有序(Long-period stacking ordered,LPSO)相。其中LPSO相主要为18R结构,存在少量14H结构,局部区域存在少量不完整周期的LPSO结构;此外合金中存在分布于共晶相附近的微米级富RE相以及分布于晶粒内部的微米级富Zr颗粒。经过(515℃,48 h)均匀化热处理,晶界(Mg,Zn)_(3)RE相和Mg_(5)(RE,Zn)相完全回溶,残留相主要为14H-LPSO相,局部区域存在具有不同晶体结构的LPSO过渡相。在铸态合金的晶粒内部,沿[1120]_(a)晶带轴观察,发现存在几个原子面至纳米尺度的LPSO构建块,由不同数量的LPSO构建块单元(4个RE/Zn原子层)及Mg原子层交替堆垛构成,RE/Zn与Mg原子层堆垛次序不具备完整周期性;均匀化热处理后,晶内的LPSO构建块几乎回溶,仅剩下极少量单个LPSO构建块单元。沿[0001]_(a)晶带轴观察,晶粒内部存在多种分布方式的富RE/Zn原子柱,为Mg-Gd-Y系镁合金时效过程β′析出序列中GP区的早期结构。