C12N9/246

ENZYMATIC SYNTHESIS OF SOLUBLE GLUCAN FIBER

An enzymatically produced soluble -glucan fiber composition is provided suitable for use as a digestion resistant fiber in food and feed applications. The soluble -glucan fiber composition can be blended with one or more additional food ingredients to produce fiber-containing compositions. Methods for the production and use of compositions comprising the soluble -glucan fiber are also provided.

Enzymatic synthesis of soluble glucan fiber

An enzymatically produced soluble -glucan fiber composition is provided suitable for use as a digestion resistant fiber in food and feed applications. The soluble -glucan fiber composition can be blended with one or more additional food ingredients to produce fiber-containing compositions. Methods for the production and use of compositions comprising the soluble -glucan fiber are also provided.

NOVEL THERMOSTABLE TAGATOSE-6-PHOSPHATE PHOSPHATASE AND A METHOD FOR PRODUCING TAGATOSE USING THE SAME

The present disclosure relates to tagatose-6-phosphate phosphatase consisting of an amino acid sequence of SEQ ID NO: 1, a nucleic acid encoding the tagatose-6-phosphate phosphatase, and a transformant comprising the nucleic acid. Additionally, the present disclosure relates to a composition for producing tagatose, which comprises the tagatose-6-phosphate phosphatase of the present disclosure, and a method for producing tagatose using the tagatose-6-phosphate phosphatase of the present disclosure.

METHOD FOR PREPARING GLUCOSE FROM STARCH SUGAR BY USING ACIDOTHERMUS SP.-DERIVED DEBRANCHING ENZYME HAVING HEAT RESISTANCE AND ACID RESISTANCE, AND GLUCOSE PREPARED THEREBY

The present application relates to improving the production yield of glucose to be prepared by using starch sugar as a raw material and using an Acidothermus sp. derived enzyme. The present application can replace an acid saccharification method, which produces a bitter taste through a hydrolysis reverse reaction, and, compared to a enzymatic saccharification method in which a conventional debranching enzyme is used, has an advantage of enabling costs to be reduced since a relatively high yield can be ensured by reducing side reactions of a saccharification reaction.

Enzymatic synthesis of soluble glucan fiber

An enzymatically produced soluble ?-glucan fiber composition is provided suitable for use as a digestion resistant fiber in food and feed applications. The soluble ?-glucan fiber composition can be blended with one or more additional food ingredients to produce fiber-containing compositions. Methods for the production and use of compositions comprising the soluble ?-glucan fiber are also provided.

Psicose-6-phosphate phosphatase, composition for producing psicose including said enzyme, method for producing psicose using said enzyme

The present application relates to a psicose-6-phosphate phosphatase comprising motif A and motif B, a composition for producing D-psicose comprising the enzyme, and a method for producing D-psicose using the enzyme.

ENZYMATIC SYNTHESIS OF SOLUBLE GLUCAN FIBER

An enzymatically produced soluble -glucan fiber composition is provided suitable for use as a digestion resistant fiber in food and feed applications. The soluble -glucan fiber composition can be blended with one or more additional food ingredients to produce fiber-containing compositions. Methods for the production and use of compositions comprising the soluble -glucan fiber are also provided.

COMPOSITIONS AND METHODS FOR THE TREATMENT OF ACTINOMYCETIA INFECTIONS

The present disclosure features compositions and methods for the treatment of actinomycetia (e.g., corynebacteriales) infections, e.g., caused by mycobacterial cells, residing within a host cell (e.g., a mammalian cell, e.g., immune cell, e.g., macrophage or dendritic cell). The compositions and methods include delivering a mixture of lytic enzymes to specifically target the cell envelope of a group of related bacterial species in the intracellular compartment (endosome, phagosome, lysosome, or cytosol) in which above mentioned orders of bacteria infect, grow, hide, and go quiescent.