𝔖 Bobbio Scriptorium
✦   LIBER   ✦

Synthesis and characterization of functionalized biodegradable poly(DL-lactide-co-RS-β-malic acid)

✍ Scribed by Bin He; Yin Fun Poon; Jie Feng; Mary B. Chan-Park


Publisher
John Wiley and Sons
Year
2008
Tongue
English
Weight
232 KB
Volume
87A
Category
Article
ISSN
1549-3296

No coin nor oath required. For personal study only.

✦ Synopsis


Abstract

Amorphous poly(DL‐lactide‐co‐RS‐β‐malic acid) (PDLLMAc) was synthesized by hydrogenolysis of poly(DL‐lactide‐co‐RS‐β‐malolactonate) (PDLLMA), which was obtained from the ring‐opening polymerization of DL‐lactide (DLLA) and RS‐β‐benzyl malolactonate (MA) using stannous octoate as the catalyst. The amount of malolactonate (MA) in the feeding dose was varied from 0 to 8.0 mol %. The copolymers were characterized by ^1^H NMR, FTIR, GPC, and DSC. The tensile properties and water uptake of the copolymers were measured. The protective benzyl groups in PDLLMA were completely removed in hydrogenolysis to produce PDLLMAc. The molecular weight (M~n~) of the copolymers decreased with increasing MA content. However, with low feed MA content of 0.6 and 1.0%, high molecular weight PDLLMAc with M~n~ of 63 and 35 kDa, respectively, were obtained; these copolymers exhibited good tensile yield stress and modulus of 17–23 MPa and 1.1–1.4 GPa, which are comparable to PDLLA homopolymer. The corresponding protected PDLLMA have tensile yield stress/modulus of 2.0–2.4 MPa and 11–42 MPa. The malic acid comonomer in PDLLMAc significantly improves the tensile strength and modulus compared to the protected PDLLMA. Further, the functionalizable PDLLMAc (with 0.6 mol % feed MA) was grafted with bioactive RGD peptide. The culture of primary umbilical artery smooth muscle cells was investigated. Methylthiazoletetrazolium results showed that both the RGD‐ and COOH‐functionalized (0.6 mol %) PDLLMAc copolymers were significantly more biocompatible than the control PDLLA and could potentially be employed as tissue engineering scaffolds. © 2008 Wiley Periodicals, Inc. J Biomed Mater Res 2008


📜 SIMILAR VOLUMES


Synthesis, degradability, and cell affin
✍ Liang Wang; Xiaohua Jia; Yongsheng Chen; Yongzhe Che; Zhi Yuan 📂 Article 📅 2008 🏛 John Wiley and Sons 🌐 English ⚖ 428 KB

## Abstract Poly(DL‐lactide‐__co‐__RS‐hydroxyethyl‐β‐malolactonate) (PLMAH), a novel functionalized polylactide with hydroxyl arms, was synthesized by a two‐step reaction. DL‐lactide (DLLA) and RS‐benzyloxyethyl‐β‐malolactonate were first copolymerized by ring‐opening polymerization with Sn(Oct)~2~

Synthesis and characterization of biodeg
✍ Chee-Youb Won; Chih-Chang Chu; Jong Doo Lee 📂 Article 📅 1998 🏛 John Wiley and Sons 🌐 English ⚖ 236 KB 👁 2 views

The melt polycondensation reaction of the prepolymer prepared from N-(benzyloxycarbonyl)-L-aspartic acid anhydride (N-CBz-L-aspartic acid anhydride) and low molecular weight poly(ethylene glycol) (PEG) using titanium isopropoxide (TIP) as a catalyst produced the new biodegradable poly(L-aspartic aci

Synthesis and Characterization of Amphip
✍ Hosei Shinoda; Yukiko Asou; Akio Suetsugu; Kimiko Tanaka 📂 Article 📅 2003 🏛 John Wiley and Sons 🌐 English ⚖ 204 KB

## Abstract An amphiphilic biodegradable polymer, poly(aspartic acid‐__co__‐lactic acid) (PAL), was synthesized by simply heating a mixture of aspartic acid (Asp) and L‐lactide without additional catalysts or solvents. The unique branched architecture comprising succinimide units and lactic acid un

Synthesis and characterization of amphip
✍ Dedai Lu; Zongli Ren; Tianhong Zhou; Shoufeng Wang; Ziqiang Lei 📂 Article 📅 2007 🏛 John Wiley and Sons 🌐 English ⚖ 114 KB 👁 1 views

## Abstract Poly(glutamic acid‐__co__‐lactic acid‐__co__‐glycolic acid) (PGLG), an amphiphilic biodegradable copolymer, was synthesized by simply heating a mixture of L‐glutamic acid (Glu), DL‐lactic acid, and glycolic acid with the present of stannous chloride. The unique branched architecture com

Synthesis and characterization of poly-α
✍ Tao Peng; Si-Xue Cheng; Ren-Xi Zhuo 📂 Article 📅 2006 🏛 John Wiley and Sons 🌐 English ⚖ 290 KB

## Abstract A series of biodegradable amphiphilic graft polymers were successfully synthesized by grafting poly(L‐lactide) (PLLA) sequences onto a water‐soluble polymer poly‐α,β‐[__N__‐(2‐hydroxyethyl)‐L‐aspartamide] (PHEA) backbone. We established the feasibility of preparing these novel graft pol