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   1 obiotic organic substrates, and synthesis of polyhydroxyalkanoates.                                  
  
  
     4 neered heart valve scaffolds fabricated from polyhydroxyalkanoates can be used for implantation in th
  
  
     7 shown to be required for medium-chain-length polyhydroxyalkanoate (PHA(MCL)) formation from fatty aci
     8 al plastic factories to produce a variety of polyhydroxyalkanoate (PHA) biopolymers with desirable st
  
  
  
  
    13  required for acetate uptake, glycolysis and polyhydroxyalkanoate (PHA) synthesis were conserved in a
    14 h microbial internal storage polymers (e.g., Polyhydroxyalkanoate (PHA)) could be produced and consum
    15    Here, we studied MNM effects on bacterial polyhydroxyalkanoate (PHA), specifically polyhydroxybuty
    16 he synthesis and degradation of glycogen and polyhydroxyalkanoate (PHA), which function as energy and
  
  
  
  
  
  
  
    24 nt genetic redundancy in the biosynthesis of polyhydroxyalkanoates (PHAs) in the Rhodospirillum rubru
    25 cent progress with plant-based production of polyhydroxyalkanoates (PHAs), silk, elastin, collagen, a
    26 e scaffold that was fabricated from a porous polyhydroxyalkanoate (pore size 180 to 240 microm; Tepha
    27 stonia eutropha H16 is capable of growth and polyhydroxyalkanoate production on plant oils and fatty 
    28  levels of R. eutropha H16 during growth and polyhydroxyalkanoate production on trioleate and fructos
  
  
  
    32 ratio of PHB granules or by interacting with polyhydroxyalkanoate synthase and indicate that PhaP pla
    33 ynthetic operon indicates that the amount of polyhydroxyalkanoate synthase in a host organism plays a
    34 that are proposed to play important roles in polyhydroxyalkanoate synthesis and granule formation.   
    35 ion of the bio-based polyesters, for example polyhydroxyalkanoates synthesized by bacteria for energy
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