• Title/Summary/Keyword: actinidin

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Kiwifruit 과육의 단백질분해효소의 생화학적 특성과 산업화 방안 검토

  • 오순자;고석찬
    • Proceedings of the Plant Resources Society of Korea Conference
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    • 2003.04a
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    • pp.142-142
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    • 2003
  • 본 연구에서는 kiwifruit 과육 속에 들어 있는 단백질분해효소의 gelatin분해활성을 조사하고 그 산업적 방안을 검토하였다. Kiwifruit 과육에서 3개의 단백질분해효소의 활성 밴드(PI, PII, PIII)가 관찰되었다. 단백질분해효소 PI은 220 kD, PII는 51 kD, PIII는 26 kD에 해당하는 것으로 추정할 수 있었다. 이들 단백질분해효소 PI, PII, PIII는 모두 pH 2.0~5.0 범위에서 높은 활성을 보였으며 pH 4.0에서 가장 높게 나타났다. 이들 단백질분해효소 PI, PII, PIII는 모두 cysteine proteinase 저해제인 E-64와 iodoacetate에 의해서 저해되었으며, cysteine proteinase를 촉진하는 DTT, cysteine 및 $\beta$-mercaptoethanol에 의해서 활성이 증가하였다. 그 중 단백질분해효소 PIII는 분자량과 효소의 특성으로 보아 actinidin (EC 3.4.22.14)과 동일한 것으로 판단되었다. 단백질분해효소 PI, PII, PIII는 모두 $Ca^{2+}$, $Mg^{2+}$$Mn^{2+}$에 의해 촉진되었으며, $Zn^{2+}$과 Hg$^{2+}$에 의해 완전히 저해되는 것으로 나타났다. 하지만, Co$^{2+}$, Cu$^{2+}$, $Al^{3+}$ , Fe$^{3+}$ 등 금속이온의 영향은 다소 다르게 나타났다. Kiwifruit 과육의 단백질분해효소 PI, PII, PIII 중에서 PI과 PII는 온도가 증가함에 따라 활성이 점차 낮아졌으나 PIII는 비교적 안정한 것으로 조사되었다. 특히, PIII는 5$0^{\circ}C$ 이내의 범위에서 48시간 경과시에도 75% 이상의 활성을 보여 이 범위의 온도에서는 상당 시간 동안 안정한 것으로 나타났다. 단백질분해효소의 산업적 가치를 고려해 볼 때 우선적으로 넓은 기질특이성과 열안정성이 높아야 한다. Kiwifruit에서 추출한 단백질분해효소는 4$0^{\circ}C$ 전후에서 최대의 활성을 보이고, 고온에서도 상당 시간 비교적 안정한 특성을 보여 식품제조, 식육연화 등 식품산업 분야에서의 활용가능성이 높을 것으로 보이며, 나아가 단백질이 갖는 식품학적 기능성을 높이는 데에도 사용할 수 있을 것으로 판단된다.

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Comparative proteome profiling in the storage root of sweet potato during curing-mediated wound healing (큐어링 후 저장에 따른 고구마 저장뿌리 단백질체의 비교분석)

  • Ho Yong Shin;Chang Yoon Ji;Ho Soo Kim;Jung-Sung Chung;Sung Hwan Choi;Sang-Soo Kwak;Yun-Hee Kim;Jeung Joo Lee
    • Journal of Plant Biotechnology
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    • v.50
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    • pp.1-10
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    • 2023
  • Sweet potato (Ipomoea batatas L. Lam) is an economically important root crop and a valuable source of nutrients, processed foods, animal feeds, and pigment materials. However, during post-harvest storage, storage roots of sweet potatoes are susceptible to decay caused by various microorganisms and diseases. Post-harvest curing is the most effective means of healing wounds and preventing spoilage by microorganisms during storage. In this study, we aimed to identify proteins involved in the molecular mechanisms related to curing and study proteomic changes during the post-curing storage period. For this purpose, changes in protein spots were analyzed through 2D-electrophoresis after treatment at 33℃ (curing) and 15℃ (control) for three days, followed by a storage period of eight weeks. As a result, we observed 31 differentially expressed protein spots between curing and control groups, among which 15 were identified. Among the identified proteins, the expression level of 'alpha-amylase (spot 1)' increased only after the curing treatment, whereas the expression levels of 'probable aldo-keto reductase 2-like (spot 3)' and 'hypothetical protein CHGG_01724 (spot 4)' increased in both the curing and control groups. However, the expression level of 'sporamin A (spot 10)' decreased in both the curing and control treatments. In the control treatment, the expression level of 'enolase (spot 14)' increased, but the expression levels of 'chain A of actinidin-E-64 complex+ (spot 19)', 'ascorbate peroxidase (spot 22)', and several 'sporamin proteins (spot 20, 21, 23, 24, 27, 29, 30, and 31)' decreased. These results are expected to help identify proteins related to the curing process in sweet potato storage roots, understand the mechanisms related to disease resistance during post-harvest storage, and derive candidate genes to develop new varieties with improved low-temperature storage capabilities in the future.

Effect of Natural Tenderizers or Phosphates on Quality Improvement of the Low-grade Seasoned Hanwoo Ribs (천연연화제 및 인산염의 첨가가 저급양념한우갈비의 품질개선에 미치는 효과)

  • Kim, K. J.;Min, J. S.;Lee, S. O.;Jang, A.;Jang, S. H.;Cheon, Y. H.;Lee, M.
    • Journal of Animal Science and Technology
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    • v.45 no.2
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    • pp.309-318
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    • 2003
  • In order to improve the quality of low-grade seasoned ribs, kiwi powder, pear powder and phosphates were studied. To seasoned ribs, 0.1%, 0.3% or 0.5% of kiwi powder was added and their MFI(Myofibrillar Fragmentation Index) values were 341.4, 368.3 and 405.1, respectively. As the amount of kiwi increased, MFI value increased(p<0.001). Also, when 0.5%, 1.0% or 3.0% of pear powder was added to seasoned ribs, their MFI values were increased as the addition levels of pear powder increased. As the amount of kiwi and pear powder were increased, WHC(Water Holding Capacity) decreased(p<0.001). On the other hand, as the amount of phosphates added increased, WHC increased. In drip loss, as the amount of kiwi and pear powder increased, it increased. However, drip loss was decreased as the amount of phosphates increased. For meat color, ‘L’ values of pear treatment groups were similar to those of control and ‘a’ values were higher in the treatment groups of 0.1${\sim}$0.3% kiwi powder, 0.5${\sim}$1.0% pear powder and 0.3${\sim}$0.5% phosphate than those of control. In sensory evaluation, treatment group of 0.3% kiwi powder and 0.5% phosphate showed the highest values in juiciness, tenderness and acceptability among the treatments(p<0.01).