Patents by Inventor Craig John Van Dolleweerd

Craig John Van Dolleweerd has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20230365976
    Abstract: Nodulisporic acids (NAs) comprise a group of indole diterpenes known for their potent insecticidal activities; however, biosynthesis of NAs by its natural producer, Hypoxylon pulicicidum (Nodulisporium sp.) is exceptionally difficult to achieve. The identification of genes responsible for NA production could enable biosynthetic pathway optimization to provide access to NAs for commercial applications. Obtaining useful quantities of NAs using published fermentations methods is challenging, making gene knockout studies an undesirable method to confirm gene function. Alternatively, heterologous gene expression of H. pulicicidum genes in a more robust host species like Penicillium paxilli provides a way to rapidly identify the function of genes that play a role in NA biosynthesis. In this work, we identified the function of four secondary-metabolic genes necessary for the biosynthesis of nodulisporic acid F (NAF) and reconstituted these genes in the genome of P.
    Type: Application
    Filed: August 1, 2022
    Publication date: November 16, 2023
    Inventors: Matthew Joseph Nicholson, Sarah Adeline Kessans, Emily Jane Parker, Leyla Yolanda Bustamante Rodriguez, David Barry Scott, Kyle Cornelius Van de Bittner, Craig John Van Dolleweerd
  • Patent number: 11655476
    Abstract: A modular and hierarchical DNA assembly platform for synthetic biology is described. This enabling technology, termed MIDAS (for Modular Idempotent DNA Assembly System), can precisely assemble multiple DNA fragments in a single reaction using a standardised assembly design. It can be used to build genes from libraries of sequence-verified, reusable parts and to assemble multiple genes in a single vector. We describe the design and use of MIDAS, and its application in the reconstruction of the metabolic pathway for production of paspaline, a key intermediate in the biosynthesis of a range of indole diterpenes—a class of economically important secondary metabolites produced by several species of filamentous fungi.
    Type: Grant
    Filed: September 28, 2018
    Date of Patent: May 23, 2023
    Assignee: Victoria Link Llimited
    Inventors: Emily Jane Parker, Matthew Joseph Nicholson, Craig John Van Dolleweerd
  • Patent number: 11453882
    Abstract: Nodulisporic acids (NAs) comprise a group of indole diterpenes known for their potent insecticidal activities; however, biosynthesis of NAs by its natural producer, Hypoxylon pulicicidum (Nodulisporium sp.) is exceptionally difficult to achieve. The identification of genes responsible for NA production could enable biosynthetic pathway optimization to provide access to NAs for commercial applications. Obtaining useful quantities of NAs using published fermentations methods is challenging, making gene knockout studies an undesirable method to confirm gene function. Alternatively, heterologous gene expression of H. pulicicidum genes in a more robust host species like Penicillium paxilli provides a way to rapidly identify the function of genes that play a role in NA biosynthesis. In this work, we identified the function of four secondary-metabolic genes necessary for the biosynthesis of nodulisporic acid F (NAF) and reconstituted these genes in the genome of P.
    Type: Grant
    Filed: September 28, 2018
    Date of Patent: September 27, 2022
    Inventors: Matthew Joseph Nicholson, Sarah Adeline Kessans, Emily Jane Parker, Leyla Yolanda Bustamante Rodriguez, David Barry Scott, Kyle Cornelius Van de Bittner, Craig John Van Dolleweerd
  • Publication number: 20210032635
    Abstract: A modular and hierarchical DNA assembly platform for synthetic biology is described. This enabling technology, termed MIDAS (for Modular Idempotent DNA Assembly System), can precisely assemble multiple DNA fragments in a single reaction using a standardised assembly design. It can be used to build genes from libraries of sequence-verified, reusable parts and to assemble multiple genes in a single vector. We describe the design and use of MIDAS, and its application in the reconstruction of the metabolic pathway for production of paspaline, a key intermediate in the biosynthesis of a range of indole diterpenes—a class of economically important secondary metabolites produced by several species of filamentous fungi.
    Type: Application
    Filed: September 28, 2018
    Publication date: February 4, 2021
    Inventors: Emily Jane Parker, Matthew Joseph Nicholson, Craig John Van Dolleweerd
  • Publication number: 20200299700
    Abstract: Nodulisporic acids (NAs) comprise a group of indole diterpenes known for their potent insecticidal activities; however, biosynthesis of NAs by its natural producer, Hypoxylon pulicicidum (Nodulisporium sp.) is exceptionally difficult to achieve. The identification of genes responsible for NA production could enable biosynthetic pathway optimization to provide access to NAs for commercial applications. Obtaining useful quantities of NAs using published fermentations methods is challenging, making gene knockout studies an undesirable method to confirm gene function. Alternatively, heterologous gene expression of H. pulicicidum genes in a more robust host species like Penicillium paxilli provides a way to rapidly identify the function of genes that play a role in NA biosynthesis. In this work, we identified the function of four secondary-metabolic genes necessary for the biosynthesis of nodulisporic acid F (NAF) and reconstituted these genes in the genome of P.
    Type: Application
    Filed: September 28, 2018
    Publication date: September 24, 2020
    Inventors: Matthew Joseph Nicholson, Sarah Adeline Kessans, Emily Jane Parker, Leyla Yolanda Bustamante Rodriguez, David Barry Scott, Kyle Cornelius Van de Bittner, Craig John Van Dolleweerd