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Faika Dwiyanti
"Tubuh kita memerlukan asam lemak essensial, yang dapat dipenuhi
dengan mengkonsumsi makanan yang mengandung asam lemak essensial
tersebut. Salah satu bahan makanan yang mengandung asam lemak
essensial adblah kacang panjang {Vigna sesquipedalis). Tetapi, kacang
panjang juga mengandung enzim lipoksigenase yang mengkatalisis reaksi
oksidasi asam linoleat oleh oksigen menjadi hidroperoksida. Senyawa ini
bersifat tidak stabil dan dapat dioksidasi lebih lanjut m^nghasilkan senyawasenyawa
yang menimbulkan ketengikan dan mempunyai dampak negatif bagi
kesehatan. Oleh karena itulah, penelitian ini bertujuan untuk mengisolasi
enzim lipoksigenase dari kacang panjang serta menentukan aktifitas enzim
tersebut sebagai biokatalisator pada reaksi oksidasi asam linoleat. Juga
dilakukan penentuan kondisi optimum reaksi, yaitu pH dan suhu inkubasi
optimum. Purifikasi enzim yang telah diisolasi dilakukan melalui tiga tahap,
yaitu fraksionasi dengan ammonium sulfat, dialisis, dan kromatografi penukar
anion DEAE Sellulosa. Berdasarkan hasil pengukuran, ternyata aktifitas
spesifik enzim lipoksigenase meningkat mulai dari tahap ekstraksi (0,226
U/mg), fraksionasi dengan ammonium sulfat 60-90 % (0,418 U/mg), sampai
dialisis (0,523 U/mg). Aktifitas enzim meningkat secara tajam setelah
dilakukan kromatografi 350,6 U/mg (puncak I) dan 177,1 U/mg (puncak II). Sedangkan untuk kondisi optimum reaksl diperoleh pH optimum pada pH 9,0
dan suhu inkubasi optimum pada 30° C."
Depok: Fakultas Matematika dan Ilmu Pengetahuan Alam Universitas Indonesia, 2003
S-Pdf
UI - Skripsi Membership  Universitas Indonesia Library
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Suwarti
"Oxydoreductases are enzymes which catalyze oxidation-reduction reaction of their corresponding substrates. Oxydoreductase enzymes from many microorganisms had become major focus of research during last decades. This reaction had been utilized in biosensor (Yuhashi et al. 2005), biotransformation and biofuel (Zu et al. 2006). In the field of biosensor, glucose dehydrogenase application as self-blood glucose monitoring had evolved through several generation to enhance its sensitivity and specificity (Witarto et al. 1997).
Oxydoreductase involve cofactor in their active sites. According to Anthony (1996) among several known cofactors such nicotinamide, flavonoid, and quinone, Pyrollo Quinoline Qinone (PQQ) as the member group of quinon is one of the latest known-cofactors. PQQ differs from other cofactor since it is not covalently bond to its enzyme (Oubrie et al. 1999). PQQ ubiquitously found in all organisms from prokaryote to eukaryote (Bishop et al. 1998). Bacteria is the largest group of PQQ-oxydoreductase producing microorganisms. They successfully isolated from many habitats such: soil, water (Toyama et al. 1995), fruits (Adachi et al. 2003), plants, and in human mouth (Anesti et al. 2005). However, study on PQQ-oxydoreductase producing bacteria isolation had never been reported in Indonesia.
PQQ-Oxydoreductase bacteria are able to utilize organic substrates such glucose, ethanol, methanol, up to polyvinyl alcohol (Ameyama et al. 1985). One of the habitats which provides such organic substrates is Situ Agathis located in University of Indonesia Depok. Situ Agathis contain humic substances that could be degraded in to glucose, ethanol, methanol, also quinone.
In this study, isolation of oxydoreductase-producing bacteria from Situ Agathis University of Indonesia, Depok and characterization of oxydroreductases of selected isolates were performed. The objectives of this research are: to investigate the presence of oxydoreductase-producing bacteria, to isolate the oxydoreductases -producing bacteria, and to partially characterize oxydoreductases from Situ Agathis University of Indonesia Depok. This is the first study on bacteria isolation performed in Situ Agathis UI, Depok. Hence, this study can provide information about the oxydoreductases- producing bacteria from Situ Agathis, which located in UI, Depok. The study consists of two part: first part describe the isolation of oxydoreductase-producing bacteria from Situ Agathis. Second part describe the partial characterization of oxydoreductases which covers enzyme activity, molecular weight, and PQQ effects on the enzymes activity.
The research was carried out at the Protein Engineering Laboratory, Biotechnology Research Centre, Indonesian Institute of Science, Cibinong and the Laboratory of Microbiology, Department of Biology, University of Indonesia, Depok during February ? September 2007. The isolation of bacteria was conducted in three methods i.e : dilution, filtration using filter paper Milipore membran (0.2 μm) based on Cappucino and Sherman (2002). Isolation of oxydoreductase-producing bacteria was carried out by using selective media based on Toyama et al. (1995). The assay of oxydoreductases was performed by using Native-PAGE based on Khodijah (2002).
The result showed that 83 isolates were obtained from Situ Agathis which we assumed could produce oxydoreductase enzymes. Among those isolates, 15 isolates were randomly selected for further study e.g : five isolates which could grow in glucose as sole carbon sources by producing glucose dehdyrogenase, six isolates which could grow on ethanol as sole carbon sources by producing ethanol dehydrogenase and four isolates which could grow on methanol as sole carbon sources by producing methanol dehydrogenase. The selected isolates showed various morphotypes indicating no specific morphological character in oxydoreductase-producing bacteria.
Two oxydoreductases from selected isolates were selected to be analyzed further in second part this thesis. Those enzymes were examined for their possibility to have intracellular PQQ cofactor. Those enzymes were obtained from isolate G1H1D30 (glucose dehydrogenase) and isolate A1H2D60 (ethanol dehydrogenase). Native-PAGE result confirmed that crude extract fraction, dialyzed fraction and elution of open column chromatography of isolate G1H1D30 can produce glucose dehydrogenase and isolate A1H2D60 can produce ethanol dehdyrogenase. The molecular weight of glucose dehydrogenase subunit is about 46 kDa using SDS-PAGE.
SDS-PAGE of ethanol dehydrogenase did not show any protein band in acrylamide gel. We assumed that the amount of protein extracted from cell cytoplasm was not sufficient enough to be detected in SDS-PAGE. Cell of isolate A1H2D60 should be treated by other destruction method such as French pressure or ultrasonicator since this isolate is Gram positive bacteria which had thicker peptydoglycan layer than isolate G1H1D30 which is Gram negative bacteria.
Other characterization performed was addition of PQQ as the cofactor to investigate its effect on enzymes activity. Glucose dehydrogenase from isolate G1H1D30 was known to be PQQ dependent enzymes from its activity increased after addition of PQQ. The addition of PQQ raised the indicating no specific morphological character in oxydoreductase-producing bacteria.
Two oxydoreductases from selected isolates were selected to be analyzed further in second part this thesis. Those enzymes were examined for their possibility to have intracellular PQQ cofactor. Those enzymes were obtained from isolate G1H1D30 (glucose dehydrogenase) and isolate A1H2D60 (ethanol dehydrogenase). Native-PAGE result confirmed that crude extract fraction, dialyzed fraction and elution of open column chromatography of isolate G1H1D30 can produce glucose dehydrogenase and isolate A1H2D60 can produce ethanol dehdyrogenase. The molecular weight of glucose dehydrogenase subunit is about 46 kDa using SDS-PAGE.
SDS-PAGE of ethanol dehydrogenase did not show any protein band in acrylamide gel. We assumed that the amount of protein extracted from cell cytoplasm was not sufficient enough to be detected in SDS-PAGE. Cell of isolate A1H2D60 should be treated by other destruction method such as French pressure or ultrasonicator since this isolate is Gram positive bacteria which had thicker peptydoglycan layer than isolate G1H1D30 which is Gram negative bacteria.
Other characterization performed was addition of PQQ as the cofactor to investigate its effect on enzymes activity. Glucose dehydrogenase from isolate G1H1D30 was known to be PQQ dependent enzymes from its activity increased after addition of PQQ. The addition of PQQ raised theindicating no specific morphological character in oxydoreductase-producing bacteria.
Two oxydoreductases from selected isolates were selected to be analyzed further in second part this thesis. Those enzymes were examined for their possibility to have intracellular PQQ cofactor. Those enzymes were obtained from isolate G1H1D30 (glucose dehydrogenase) and isolate A1H2D60 (ethanol dehydrogenase). Native-PAGE result confirmed that crude extract fraction, dialyzed fraction and elution of open column chromatography of isolate G1H1D30 can produce glucose dehydrogenase and isolate A1H2D60 can produce ethanol dehdyrogenase. The molecular weight of glucose dehydrogenase subunit is about 46 kDa using SDS-PAGE.
SDS-PAGE of ethanol dehydrogenase did not show any protein band in acrylamide gel. We assumed that the amount of protein extracted from cell cytoplasm was not sufficient enough to be detected in SDS-PAGE. Cell of isolate A1H2D60 should be treated by other destruction method such as French pressure or ultrasonicator since this isolate is Gram positive bacteria which had thicker peptydoglycan layer than isolate G1H1D30 which is Gram negative bacteria.
Other characterization performed was addition of PQQ as the cofactor to investigate its effect on enzymes activity. Glucose dehydrogenase from isolate G1H1D30 was known to be PQQ dependent enzymes from its activity increased after addition of PQQ. The addition of PQQ raised theenzyme activity to eight fold from 0.102 U/mL to 0.94 U/mL of crude enzyme extract. In contrast, addition of PQQ did not give significant effect to EDH enzyme activity (activity of crude enzyme remain 0.082 U/mL in the presence and absence of PQQ). However, further study should be performed to analyze the real cofactor of EDH from isolate A1H2D60. EDH differs from GDH since it had disulphide ring which stabilize PQQ bound to its enzyme.
Hence, PQQ could remain bound to EDH as purification procedure performed. PQQ-GDH do not have any disulphide ring which could stabilize PQQ bound. This fact implicated unstable PQQ bound to GDH while isolation and purification performed."
Depok: Fakultas Matematika dan Ilmu Pengetahuan Alam Universitas Indonesia, 2008
T39491
UI - Tesis Open  Universitas Indonesia Library
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Destrimita Risma
"ABSTRAK
Enzim α-glukosidase (EC. 3.2.1.20, α-D-glukosida glukohidrolase) adalah enzim terikat membran yang terdapat pada epitel usus halus dan berperan pada pencernaan karbohidrat makanan yang memecah karbohidrat menjadi glukosa. Enzim ini diperlukan pada pencarian senyawa analog sebagai inhibitor enzim tersebut dalam rangka penemuan obat Diabetes Melitus tipe dua. Pada penelitian ini, sebagai sumber enzim digunakan beras baru, beras lapuk, dan dedak dari tiga varietas, yaitu Sarinah, IR 64, dan IR 46. Beras baru, beras lapuk, dan dedak selanjutnya dibuat menjadi ekstrak kasar enzim tepung beras baru, tepung beras lapuk, dan tepung dedak. Hasil penelitian menunjukan bahwa dari sembilan ekstrak kasar enzim, tepung beras lapuk IR 46 menunjukan aktivitas tertinggi yaitu 90,3 mU/mL. Aktivitas tertinggi ditemukan pada tingkat kejenuhan 20-50% pada fraksinasi dengan ammonim sulfat sebesar 228,2 mU/mg. Enzim hasil dialisis memiliki aktivitas spesifik 238,9 mU/mg dan pH optimum 5,00. Enzim α-Glukosidase dari beras lapuk IR 46 memiliki nilai Km = 5,17 mM dan Vmax =0,55 mM/menit. Hasil uji logam menunjukkan bahwa merupakan aktivator enzim α-glukosidase sedangkan berperan sebagai inhibitornya. Pada uji inhibisi, quersetin dan ekstrak buah mahkota dewa dengan kadar 1% menyebabkan persen inhibisi tertinggi masing-masing sebesar 19,84% dan 28,20%.

ABSTRACT
The enzyme α-glucosidase (EC.3.2.1.20, α-D-glukohidrolase) is a membrane bound enzyme found in intestinal ephitelium and plays role in carbohydrate digestion cleavaging carbohydrate into glucose. This enzyme is needed to find analogous compound as inhibitor of this enzyme in the context of drug exploration for Diabetes Mellitus type two. In this study, the sources of the enzyme used are new rice, moldy rice, and rice bran that for each from three varieties of rice: Sarinah, IR 64, and IR 46. Those nine sources of the enzyme was made into crude enzyme of new rice flour, moldy rice flour, and rice bran flour. The result showed that moldy rice flour IR 46 had the highest activity to be 90,3 mU/mL. The highest activity in fractionation with ammonium sulphate was founded in saturation level of 20-50% to be 228,2 mU/mg. In dialysis, the enzyme had the specific activity to be 238,9 mU/mg and pH optimum was 5,00. α-glucosidase from moldy rice IR 46 had Km value = 5,17 mM and Vmax value = 0,55 mM/minute. The result in metal assay showed that Mg2+ and Mn2+ were activator of α-Glucosidase whereas Co2+ and Zn2+ acted as inhibitor. Mahkota Dewa fruit extract and Quersetin caused the highest percent of inhibition in 1% for each 19.84% and 28,20%."
Depok: Fakultas Matematika dan Ilmu Pengetahuan Alam Universitas Indonesia, 2012
S1414
UI - Skripsi Open  Universitas Indonesia Library
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Juraida
"Mikroalga Spirulina platensis rnerupakan salah satu sumber asam lemak tidakjenuh majemuk atau Poly Unsaturated Fatty Acid (PUFA), yaitu asam linoleat dan asam y-linolenat. Produksi PUFA ini berkaitan dengan aktivitas enzim desaturase yang terdapat di dalam sel S. platensis. Desaturase merupakan enzim yang dapat mengkatalisis reaksi pembentukan ikatan rangkap pada rantai karbon asam lemak. Enzim ini dapat dimanfaatkan pada biokonversi secara in vitro untuk meningkatkan ketidakjenuhan asam lemak. Penelitian ini bertujuan untuk mengisolasi dan " menentukan aktivitas dan sifat enzim tersebut sebagai biokatalisator pada reaksi pembentukan ikatan rangkap asam lemak minyak sawit. Hasil penelitian menunjukkan bahwa desaturase dapat diisolasi dari S. platensis dan mampu meningkatkan ketidakjenuhan asam lernak minyak sawit. Pengujian karakteristik desaturase menunjukkan bahwa desaturase memiliki aktivitas optimum pada perbandingan substrat-enzim (1 :1), pH 7,5 dan suhu 25°C. logam kofaktor yang bersifat aktifator untuk desaturase adalah Ca2 +, Mn2 +, Cu2: dan Mg2 +, sedangkan sebagai inhibitor adalah Mg2 + (pada konsentrasi diatas 0,5 mM) dan EDTA. Desaturase S. platensis memiliki I periode stabilitas yang singkat, yaitu tiga jam. Analisis kromatografi gas terhadap perubahan komposisi asam lemak minyak sawit sebelum dan setelah desaturasi menunjukkan adanya aktivitas delta-12 desaturase."
Depok: Fakultas Matematika dan Ilmu Pengetahuan Alam. Universitas Indonesia, 2005
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UI - Skripsi Membership  Universitas Indonesia Library
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Betsy R. Lumban Gaol
"Abstrak Keunggulan enzim adalah spesifisitasnya pada suatu substrat. Salah satu enzim yang banyak dimanfaatkan adalah glukosa oksidase (GOD). GOD merupakan enzim yang bereaksi secara spesifik dalam mengkatalisis reaksi oksidasi b-D-glukosa menjadi senyawa D-glukonolakton dan hidrogen peroksida. Enzim ini banyak dihasilkan kapang dari genus Aspergillus dan Penicillium. Enzim dari genus Aspergillus umumnya intraseluler, sementara yang dari genus Penicillium umumnya ekstraseluler.Pada penelitian ini akan diisolasi GOD dari Penicillium notatum 727. Mula-mula dilakukan penentuan waktu inkubasi optimum dan pH media optimum untuk produksi enzim GOD. Selanjutnya, isolasi dilakukan pada waktu inkubasi optimum, yaitu 45 jam dan pH media optimum, yaitu 5,4. Dari hasil isolasi diperoleh ekstrak kasar enzim dengan aktivitas spesifik 0,2138 U/mg protein. Selanjutnya ekstrak enzim yang dihasilkan dimurnikan lebih lanjut. Langkah awal adalah dengan pengendapan secara terfraksi dengan (NH4)2SO4. Enzim dengan aktivitas spesifik paling tinggi diperoleh dari fraksi 60-80 % (NH4)2SO4 yaitu sebesar 2,0968 U/mg protein. Selanjutnya enzim dimurnikan lebih lanjut dengan dialisis. Dari hasil dialisis diperoleh enzim dengan aktivitas spesifik lebih tinggi yaitu 2,4909 U/mg protein. Enzim hasil dialisis kemudian ditentukan pH dan suhu optimum aktivitas katalitiknya. Diperoleh pH optimum enzim pada pH 6,0 dan temperatur optimum 40 ?C.Penentuan aktifitas enzim dilakukan dengan metode spektroskopi UV-Visibel yang dimodifikasi oleh Markwell et al dengan menggunakan benzokuinon. Metode ini didasari oleh prinsip reduksi enzimatis benzokuinon menjadi hidrokuinon yang diukur kenaikan absorbansinya pada 290 nm. Sedangkan penentuan kadar protein dilakukan dengan metode Lowry. Kata kunci: Penicillium notatum, enzim, glukosa oksidase, isolasi, purifikasi. xv + 55 ; tabel 4; gambar 7; lampiran 7 Bibliografi : 20 (1959-2004)"
Depok: [Fakultas Matematika dan Ilmu Pengetahuan Alam Universitas Indonesia;, ], 2005
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UI - Skripsi Membership  Universitas Indonesia Library
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Wati Sekarwati
1993
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UI - Skripsi Membership  Universitas Indonesia Library
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Purba, Dewi Pratiwi
"Oksigen merupakan zat penting dalam metabolisme energi tubuh, terutama otak. Neuroglobin (Ngb), salah satu famili hemoprotein berperan sebagai pengikat oksigen di otak. Seperti hemoprotein lainnya, gugus hem pada Ngb rentan mengalami oksidasi Fe2+ menjadi Fe3+ yang dapat menghilangkan fungsi pengikatan oksigennya. Penelitian ini bertujuan untuk menganalisis perubahan spektrum Ngb terhadap oksigen dan karbonmonoksida serta mencari potensi enzim yang dapat mereduksi Ngb teroksidasi (metNgb). Protein Ngb diisolasi dengan teknik fraksinasi menggunakan amonium sulfat kejenuhan 90%, dipurifikasi dengan kromatografi penukar anion (DEAE Selulosa) dan kromatografi imunoafinitas. Hasil isolasi dikonfirmasi dengan SDS-PAGE dan Western blot. Enzim pereduksi metneuroglobin diisolasi dengan RIPA lysis buffer, dipurifikasi dengan kromatografi Affi gel blue, dan dikonfirmasi dengan SDS-PAGE. Ngb hasil purifikasi memiliki berat molekul 17,26 kDa. Analisis spektrum pada rentang panjang gelombang 350-500nm, memperlihatkan puncak soret dari deoksiNgb, oksiNgb, karboksiNgb dan metNgb berturut-turut adalah 415 nm, 405 nm, 405 nm, dan 420 nm. Hasil isolasi enzim pereduksi yang diperoleh terdiri dari 2 bagian, yaitu eluat tidak terikat matriks (eluat-1) dan eluat terikat matriks (eluat-2). Hasil SDS-PAGE dari eluat-1, eluat-2 dan fraksi bebas Ngb (hasil samping purifikasi Ngb) menunjukkan 3 pita yang sama pada berat molekul 72,45; 26,84 dan 16,33 kDa yang diduga berpotensi sebagai enzim pereduksi. Kinetik reduksi diuji dengan mereaksikan fraksi dan metNgb serta mengukur serapan deoksiNgb yang terbentuk tiap satuan waktu. Hasil pengukuran rasio NgbFe3+ menjadi NgbFe2+ dari fraksi bebas Ngb, eluat-1 dan eluat-2, yang memiliki aktivitas reduksi terbaik adalah eluat-1 karena memiliki nilai regresi terbaik.

Oxygen is an important substance in the body's energy metabolism, especially the brain. Neuroglobin (Ngb), one of the hemoprotein families, acts as an oxygen binder in the brain. Like other hemoproteins, the haem group in Ngb is susceptible to Fe2+ oxidation to Fe3+ which can eliminate its oxygen binding function. This study aims to analyze the changes in the Ngb spectrum towards oxygen and carbon monoxide and to find the potential for enzymes that can reduce oxidized Ngb (metNgb). Ngb protein was isolated by fractionation technique using ammonium sulfate 90% saturation, purified by anion exchange chromatography (DEAE Cellulose) and immunoaffinity chromatography. The isolation results were confirmed by SDS-PAGE and Western blot. The metneuroglobin-reducing enzyme was isolated by RIPA lysis buffer, purified by Affi gel blue chromatography, and confirmed by SDS-PAGE. The purified Ngb has a molecular weight of 17.26 kDa. Spectrum analysis in the wavelength range of 350-500nm, showed the afternoon peaks of deoxyNgb, oxyNgb, carboxyNgb and metNgb were 415 nm, 405 nm, 405 nm, and 420 nm, respectively. The results of the isolation of reducing enzymes obtained consisted of 2 parts, namely the matrix-bound eluate (eluate-1) and the matrix-bound eluate (eluate-2). SDS-PAGE results of eluate-1, eluate-2 and Ngb-free fraction (byproduct of Ngb purification) showed the same 3 bands at a molecular weight of 72.45; 26.84 and 16.33 kDa which are thought to have potential as reducing enzymes. The reduction kinetics was tested by reacting the fraction and metNgb and measuring the deoxyNgb uptake formed per unit time. The results of the measurement of the ratio of NgbFe3+ to NgbFe2+ from the free fractions Ngb, eluate-1 and eluate-2, which has the best reduction activity is eluate-1 because it has the best regression value.Oxygen is an important substance in the body's energy metabolism, especially the brain. Neuroglobin (Ngb), one of the hemoprotein families, acts as an oxygen binder in the brain. Like other hemoproteins, the haem group in Ngb is susceptible to Fe2+ oxidation to Fe3+ which can eliminate its oxygen binding function. This study aims to analyze the changes in the Ngb spectrum towards oxygen and carbon monoxide and to find the potential for enzymes that can reduce oxidized Ngb (metNgb). Ngb protein was isolated by fractionation technique using ammonium sulfate 90% saturation, purified by anion exchange chromatography (DEAE Cellulose) and immunoaffinity chromatography. The isolation results were confirmed by SDS-PAGE and Western blot. The metneuroglobin-reducing enzyme was isolated by RIPA lysis buffer, purified by Affi gel blue chromatography, and confirmed by SDS-PAGE. The purified Ngb has a molecular weight of 17.26 kDa. Spectrum analysis in the wavelength range of 350-500nm, showed the afternoon peaks of deoxyNgb, oxyNgb, carboxyNgb and metNgb were 415 nm, 405 nm, 405 nm, and 420 nm, respectively. The results of the isolation of reducing enzymes obtained consisted of 2 parts, namely the matrix-bound eluate (eluate-1) and the matrix-bound eluate (eluate-2). SDS-PAGE results of eluate-1, eluate-2 and Ngb-free fraction (byproduct of Ngb purification) showed the same 3 bands at a molecular weight of 72.45; 26.84 and 16.33 kDa which are thought to have potential as reducing enzymes. The reduction kinetics was tested by reacting the fraction and metNgb and measuring the deoxyNgb uptake formed per unit time. The results of the measurement of the ratio of NgbFe3+ to NgbFe2+ from the free fractions Ngb, eluate-1 and eluate-2, which has the best reduction activity is eluate-1 because it has the best regression value"
Depok: Fakultas Kedokteran Universitas Indonesia, 2022
T-pdf
UI - Tesis Membership  Universitas Indonesia Library
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