JP2016105737A - 組換えイズロン酸2スルファターゼを製造するための細胞 - Google Patents
組換えイズロン酸2スルファターゼを製造するための細胞 Download PDFInfo
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Abstract
Description
本出願は、2012年6月29日に提出した米国仮出願第61/666,719号に基づく優先権を主張するものであり、該仮出願は、参照によりその全体が本明細書に取り込まれる。
本発明の明細書は、2013年6月27日に「2006685−00340_SEQ_LIST」と名付けたASCIIテキストファイルとして電子形式で提出された配列表を参照する。当該テキストファイルは2013年6月25日に生成され、サイズは25KBである。配列表の全内容は、参照により本明細書に取り込まれる。
上記に加え、本発明は以下を提供する。
(項目1)
配列番号1に少なくとも70%同一のアミノ酸配列を含むイズロン酸2スルファターゼ(I2S)タンパク質をコードする第一の核酸;および
配列番号5に少なくとも70%同一のアミノ酸配列を含むホルミルグリシン生成酵素(FGE)タンパク質をコードする第二の核酸を含む細胞であって、第一および/または第二の核酸は外因性であり、細胞は、細胞培養条件下で一度培養されると、配列番号1のCys59に対応するシステイン残基をCα−ホルミルグリシン(FGly)に、少なくとも約70%転換することを含むI2Sタンパク質を産生する細胞。
(項目2)
配列番号1に少なくとも70%同一のアミノ酸配列を含むイズロン酸2スルファターゼ(I2S)タンパク質をコードする第一の核酸;および
配列番号5に少なくとも70%同一のアミノ酸配列を含むホルミルグリシン生成酵素(FGE)タンパク質をコードする第二の核酸を含む細胞であって、第一および/または第二の核酸は外因性であり、細胞は、細胞培養条件下で一度培養されると、配列番号1のCys59に対応するシステイン残基をCα−ホルミルグリシン(FGly)に、少なくとも約60%転換することを含むI2Sタンパク質を産生し、比生産率が約30ピコグラム/細胞/日超である細胞。
(項目3)
細胞は、細胞培養条件下で一度培養されると、配列番号1のCys59に対応するシステイン残基をCα−ホルミルグリシン(FGly)に、少なくとも約80%転換することを含むI2Sタンパク質を産生する、項目1または2の細胞。
(項目4)
細胞は、細胞培養条件下で一度培養されると、配列番号1のCys59に対応するシステイン残基をCα−ホルミルグリシン(FGly)に、少なくとも約90%転換することを含むI2Sタンパク質を産生する、前記項目いずれか1つに記載の細胞。
(項目5)
細胞は、細胞培養条件下で一度培養されると、配列番号1のCys59に対応するシステイン残基をCα−ホルミルグリシン(FGly)に、少なくとも約95%転換することを含むI2Sタンパク質を産生する、前記項目いずれか1つに記載の細胞。
(項目6)
細胞は、細胞培養条件下で一度培養されると、配列番号1のCys59に対応するシステイン残基をCα−ホルミルグリシン(FGly)に、少なくとも約97%転換することを含むI2Sタンパク質を産生する、前記項目いずれか1つに記載の細胞。
(項目7)
第一および/または第二の核酸は操作可能にhCMVプロモーターと結合する、前記項目いずれか1つに記載の細胞。
(項目8)
第一の核酸は配列番号1に同一のアミノ酸配列を有するI2Sタンパク質をコードする、前記項目いずれか1つに記載の細胞。
(項目9)
第二の核酸は配列番号5に同一のアミノ酸配列を有するFGEタンパク質をコードする、前記項目いずれか1つに記載の細胞。
(項目10)
第一の核酸は、配列番号7に少なくとも70%同一の配列を含む、前記項目いずれか1つに記載の細胞。
(項目11)
第一の核酸は配列番号7の配列を含む、前記項目いずれか1つに記載の細胞。
(項目12)
第二の核酸は配列番号8に少なくとも70%同一の配列を含む、前記項目いずれか1つに記載の細胞。
(項目13)
第二の核酸は配列番号8と同一の配列を含む、前記項目いずれか1つに記載の細胞。
(項目14)
第一の核酸と第二の核酸の両方が外因性である、前記項目いずれか1つに記載の細胞。
(項目15)
第一および/または第二の核酸は、細胞のゲノム内に組み込まれる、前記項目いずれか1つに記載の細胞。
(項目16)
第一および/または第二の核酸は1つ以上の染色体外の構築物中に存在する、前記項目いずれか1つに記載の細胞。
(項目17)
細胞は哺乳類細胞である前記項目いずれか1つに記載の細胞。
(項目18)
哺乳類細胞はヒト細胞である項目17に記載の細胞。
(項目19)
哺乳類細胞はCHO細胞である項目17に記載の細胞。
(項目20)
細胞は懸濁培養に適応することができる前記項目いずれか1つに記載の細胞。
(項目21)
組換えI2SおよびFGEタンパク質が細胞に共発現するような条件下で前記項目いずれか1つに記載の細胞を培養することを含む、組換えイズロン酸2スルファターゼ(I2S)タンパク質の製造方法。
(項目22)
細胞は大規模に培養される項目21に記載の方法。
(項目23)
大規模とはバイオリアクタープロセスである項目22に記載の方法。
(項目24)
バイオリアクタープロセスは灌流プロセスである項目23に記載の方法。
(項目25)
バイオリアクターは10L、200L、500L、1000L、1500L、または2000Lから選択される規模である、項目23または24に記載の方法。
(項目26)
大規模とはローラーボトルプロセスである項目22に記載の方法。
(項目27)
細胞は無血清培地で培養される項目21〜26のいずれか1つに記載の方法。
(項目28)
細胞は血清を含有する培地で培養される項目21〜26のいずれか1つに記載の方法。
(項目29)
細胞は懸濁液で培養される項目21〜26のいずれか1つに記載の方法。
(項目30)
細胞は付着性で培養される項目21〜26のいずれか1つに記載の方法。
(項目31)
方法は組換えI2Sタンパク質を精製するステップをさらに含む、項目21〜30のいずれか1つに記載の方法。
(項目32)
項目21〜31のいずれか1つに記載の方法によって製造される組換えイズロン酸2スルファターゼ(I2S)タンパク質。
(項目33)
項目1〜20のいずれか1つに記載の細胞によって製造される組換えイズロン酸2スルファターゼ(I2S)タンパク質。
本発明をもっとわかり易く理解するために、初めに特定の用語を定義する。以下の用語およびその他の用語についての追加の定義は明細書全体にわたって記載する。
本発明は、とりわけ、I2Sタンパク質とFGEタンパク質を同時発現する細胞を用いて、改善された効能と活性を持つ組換えI2Sを作出するための方法及び組成物を提供する。いくつかの実施形態では、本発明に係る細胞は組換えI2Sタンパク質とFGEタンパク質を同時に過剰発現するように操作される。本発明に係る細胞は種々の細胞培養条件に適合可能である。いくつかの実施形態では、本発明の細胞は大規模の懸濁無血清培養に適合可能である。
イズロン酸−2−スルファターゼ(I2S)
ホルミルグリシン生成酵素(FGE)
I2SとFGEを同時発現する細胞
I2Sタンパク質及び/又はFGEタンパク質をコードする核酸
配列番号7:イズロン酸−2−スルファターゼ(I2S)をコードする例となる核酸配列ATGCCCCCGCCCCGCACCGGCCGCGGCCTGCTGTGGCTGGGCCTGGTGCTGAGCAGCGTGTGCGTGGCCCTGGGCAGCGAGACCCAGGCCAACAGCACCACCGACGCCCTGAACGTGCTGCTGATCATCGTGGACGACCTGCGCCCCAGCCTGGGCTGCTACGGCGACAAGCTGGTGCGCAGCCCCAACATCGACCAGCTGGCCAGCCACAGCCTGCTGTTCCAGAACGCCTTCGCCCAGCAGGCCGTGTGCGCCCCCAGCCGCGTGAGCTTCCTGACCGGCCGCCGCCCCGACACCACCCGCCTGTACGACTTCAACAGCTACTGGCGCGTGCACGCCGGCAACTTCAGCACCATCCCCCAGTACTTCAAGGAGAACGGCTACGTGACCATGAGCGTGGGCAAGGTGTTCCACCCCGGCATCAGCAGCAACCACACCGACGACAGCCCCTACAGCTGGAGCTTCCCCCCCTACCACCCCAGCAGCGAGAAGTACGAGAACACCAAGACCTGCCGCGGCCCCGACGGCGAGCTGCACGCCAACCTGCTGTGCCCCGTGGACGTGCTGGACGTGCCCGAGGGCACCCTGCCCGACAAGCAGAGCACCGAGCAGGCCATCCAGCTGCTGGAGAAGATGAAGACCAGCGCCAGCCCCTTCTTCCTGGCCGTGGGCTACCACAAGCCCCACATCCCCTTCCGCTACCCCAAGGAGTTCCAGAAGCTGTACCCCCTGGAGAACATCACCCTGGCCCCCGACCCCGAGGTGCCCGACGGCCTGCCCCCCGTGGCCTACAACCCCTGGATGGACATCCGCCAGCGCGAGGACGTGCAGGCCCTGAACATCAGCGTGCCCTACGGCCCCATCCCCGTGGACTTCCAGCGCAAGATCCGCCAGAGCTACTTCGCCAGCGTGAGCTACCTGGACACCCAGGTGGGCCGCCTGCTGAGCGCCCTGGACGACCTGCAGCTGGCCAACAGCACCATCATCGCCTTCACCAGCGACCACGGCTGGGCCCTGGGCGAGCACGGCGAGTGGGCCAAGTACAGCAACTTCGACGTGGCCACCCACGTGCCCCTGATCTTCTACGTGCCCGGCCGCACCGCCAGCCTGCCCGAGGCCGGCGAGAAGCTGTTCCCCTACCTGGACCCCTTCGACAGCGCCAGCCAGCTGATGGAGCCCGGCCGCCAGAGCATGGACCTGGTGGAGCTGGTGAGCCTGTTCCCCACCCTGGCCGGCCTGGCCGGCCTGCAGGTGCCCCCCCGCTGCCCCGTGCCCAGCTTCCACGTGGAGCTGTGCCGCGAGGGCAAGAACCTGCTGAAGCACTTCCGCTTCCGCGACCTGGAGGAGGACCCCTACCTGCCCGGCAACCCCCGCGAGCTGATCGCCTACAGCCAGTACCCCCGCCCCAGCGACATCCCCCAGTGGAACAGCGACAAGCCCAGCCTGAAGGACATCAAGATCATGGGCTACAGCATCCGCACCATCGACTACCGCTACACCGTGTGGGTGGGCTTCAACCCCGACGAGTTCCTGGCCAACTTCAGCGACATCCACGCCGGCGAGCTGTACTTCGTGGACAGCGACCCCCTGCAGGACCACAACATGTACAACGACAGCCAGGGCGGCGACCTGTTCCAGCTGCTGATGCCCTAG
配列番号8:完全長前駆体のホルミルグリシン生成酵素(FGE)をコードする例となる核酸配列
ATGGCTGCGCCCGCACTAGGGCTGGTGTGTGGACGTTGCCCTGAGCTGGGTCTCGTCCTCTTGCTGCTGCTGCTCTCGCTGCTGTGTGGAGCGGCAGGGAGCCAGGAGGCCGGGACCGGTGCGGGCGCGGGGTCCCTTGCGGGTTCTTGCGGCTGCGGCACGCCCCAGCGGCCTGGCGCCCATGGCAGTTCGGCAGCCGCTCACCGATACTCGCGGGAGGCTAACGCTCCGGGCCCCGTACCCGGAGAGCGGCAACTCGCGCACTCAAAGATGGTCCCCATCCCTGCTGGAGTATTTACAATGGGCACAGATGATCCTCAGATAAAGCAGGATGGGGAAGCACCTGCGAGGAGAGTTACTATTGATGCCTTTTACATGGATGCCTATGAAGTCAGTAATACTGAATTTGAGAAGTTTGTGAACTCAACTGGCTATTTGACAGAGGCTGAGAAGTTTGGCGACTCCTTTGTCTTTGAAGGCATGTTGAGTGAGCAAGTGAAGACCAATATTCAACAGGCAGTTGCAGCTGCTCCCTGGTGGTTACCTGTGAAAGGCGCTAACTGGAGACACCCAGAAGGGCCTGACTCTACTATTCTGCACAGGCCGGATCATCCAGTTCTCCATGTGTCCTGGAATGATGCGGTTGCCTACTGCACTTGGGCAGGGAAGCGGCTGCCCACGGAAGCTGAGTGGGAATACAGCTGTCGAGGAGGCCTGCATAATAGACTTTTCCCCTGGGGCAACAAACTGCAGCCCAAAGGCCAGCATTATGCCAACATTTGGCAGGGCGAGTTTCCGGTGACCAACACTGGTGAGGATGGCTTCCAAGGAACTGCGCCTGTTGATGCCTTCCCTCCCAATGGTTATGGCTTATACAACATAGTGGGGAACGCATGGGAATGGACTTCAGACTGGTGGACTGTTCATCATTCTGTTGAAGAAACGCTTAACCCAAAAGGTCCCCCTTCTGGGAAAGACCGAGTGAAGAAAGGTGGATCCTACATGTGCCATAGGTCTTATTGTTACAGGTATCGCTGTGCTGCTCGGAGCCAGAACACACCTGATAGCTCTGCTTCGAATCTGGGATTCCGCTGTGCAGCCGACCGCCTGCCCACCATGGACTGA
発現ベクター
調節配列又は調節要素
選択可能なマーカー
宿主細胞
哺乳類細胞株
非哺乳類細胞株
melangoster及びManduca sexta並びに細菌についてはEscherichia coli、Salmonella typhimurium、Bacillus subtilis、Bacillus lichenifonnis、Bacteroides fragilis、Clostridia perfringens、Clostridia difficile;並びに両生類に由来するXenopus Laevisに由来する細胞及び細胞株が挙げられる。
懸濁増殖に比べた接着増殖への適合性
細胞株の選択及び評価
FGly変換の比率
特異的活性
細胞培養の培地及び条件
発現されたI2Sタンパク質の精製
医薬組成物及び投与
当該実施例は、組換えI2Sタンパク質を製造するために使用することができる組換えI2SおよびFGEを共発現する最適化された例示的な細胞株を説明する。複数の代替のアプローチ、発現ベクターおよびクローニング技術が利用可能であることは、当業者に明白だろう。
配列番号2
完全長前駆体イズロン酸2スルファターゼ:
MPPPRTGRGLLWLGLVLSSVCVALGSETQANSTTDALNVLLIIVDDLRPSLGCYGDKLVRSPNIDQLASHSLLFQNAFAQQAVCAPSRVSFLTGRRPDTTRLYDFNSYWRVHAGNFSTIPQYFKENGYVTMSVGKVFHPGISSNHTDDSPYSWSFPPYHPSSEKYENTKTCRGPDGELHANLLCPVDVLDVPEGTLPDKQSTEQAIQLLEKMKTSASPFFLAVGYHKPHIPFRYPKEFQKLYPLENITLAPDPEVPDGLPPVAYNPWMDIRQREDVQALNISVPYGPIPVDFQRKIRQSYFASVSYLDTQVGRLLSALDDLQLANSTIIAFTSDHGWALGEHGEWAKYSNFDVATHVPLIFYVPGRTASLPEAGEKLFPYLDPFDSASQLMEPGRQSMDLVELVSLFPTLAGLAGLQVPPRCPVPSFHVELCREGKNLLKHFRFRDLEEDPYLPGNPRELIAYSQYPRPSDIPQWNSDKPSLKDIKIMGYSIRTIDYRYTVWVGFNPDEFLANFSDIHAGELYFVDSDPLQDHNMYNDSQGGDLFQLLMP
配列番号6
完全長ヒトFGE前駆体:
MAAPALGLVCGRCPELGLVLLLLLLSLLCGAAGSQEAGTGAGAGSLAGSCGCGTPQRPGAHGSSAAAHRYSREANAPGPVPGERQLAHSKMVPIPAGVFTMGTDDPQIKQDGEAPARRVTIDAFYMDAYEVSNTEFEKFVNSTGYLTEAEKFGDSFVFEGMLSEQVKTNIQQAVAAAPWWLPVKGANWRHPEGPDSTILHRPDHPVLHVSWNDAVAYCTWAGKRLPTEAEWEYSCRGGLHNRLFPWGNKLQPKGQHYANIWQGEFPVTNTGEDGFQGTAPVDAFPPNGYGLYNIVGNAWEWTSDWWTVHHSVEETLNPKGPPSGKDRVKKGGSYMCHRSYCYRYRCAARSQNTPDSSASNLGFRCAADRLPTMD
配列番号7
ホモサピエンスコドン最適化イズロン酸2スルファターゼ(IDS)、転写変異体1、mRNA
ATGCCCCCGCCCCGCACCGGCCGCGGCCTGCTGTGGCTGGGCCTGGTGCTGAGCAGCGTGTGCGTGGCCCTGGGCAGCGAGACCCAGGCCAACAGCACCACCGACGCCCTGAACGTGCTGCTGATCATCGTGGACGACCTGCGCCCCAGCCTGGGCTGCTACGGCGACAAGCTGGTGCGCAGCCCCAACATCGACCAGCTGGCCAGCCACAGCCTGCTGTTCCAGAACGCCTTCGCCCAGCAGGCCGTGTGCGCCCCCAGCCGCGTGAGCTTCCTGACCGGCCGCCGCCCCGACACCACCCGCCTGTACGACTTCAACAGCTACTGGCGCGTGCACGCCGGCAACTTCAGCACCATCCCCCAGTACTTCAAGGAGAACGGCTACGTGACCATGAGCGTGGGCAAGGTGTTCCACCCCGGCATCAGCAGCAACCACACCGACGACAGCCCCTACAGCTGGAGCTTCCCCCCCTACCACCCCAGCAGCGAGAAGTACGAGAACACCAAGACCTGCCGCGGCCCCGACGGCGAGCTGCACGCCAACCTGCTGTGCCCCGTGGACGTGCTGGACGTGCCCGAGGGCACCCTGCCCGACAAGCAGAGCACCGAGCAGGCCATCCAGCTGCTGGAGAAGATGAAGACCAGCGCCAGCCCCTTCTTCCTGGCCGTGGGCTACCACAAGCCCCACATCCCCTTCCGCTACCCCAAGGAGTTCCAGAAGCTGTACCCCCTGGAGAACATCACCCTGGCCCCCGACCCCGAGGTGCCCGACGGCCTGCCCCCCGTGGCCTACAACCCCTGGATGGACATCCGCCAGCGCGAGGACGTGCAGGCCCTGAACATCAGCGTGCCCTACGGCCCCATCCCCGTGGACTTCCAGCGCAAGATCCGCCAGAGCTACTTCGCCAGCGTGAGCTACCTGGACACCCAGGTGGGCCGCCTGCTGAGCGCCCTGGACGACCTGCAGCTGGCCAACAGCACCATCATCGCCTTCACCAGCGACCACGGCTGGGCCCTGGGCGAGCACGGCGAGTGGGCCAAGTACAGCAACTTCGACGTGGCCACCCACGTGCCCCTGATCTTCTACGTGCCCGGCCGCACCGCCAGCCTGCCCGAGGCCGGCGAGAAGCTGTTCCCCTACCTGGACCCCTTCGACAGCGCCAGCCAGCTGATGGAGCCCGGCCGCCAGAGCATGGACCTGGTGGAGCTGGTGAGCCTGTTCCCCACCCTGGCCGGCCTGGCCGGCCTGCAGGTGCCCCCCCGCTGCCCCGTGCCCAGCTTCCACGTGGAGCTGTGCCGCGAGGGCAAGAACCTGCTGAAGCACTTCCGCTTCCGCGACCTGGAGGAGGACCCCTACCTGCCCGGCAACCCCCGCGAGCTGATCGCCTACAGCCAGTACCCCCGCCCCAGCGACATCCCCCAGTGGAACAGCGACAAGCCCAGCCTGAAGGACATCAAGATCATGGGCTACAGCATCCGCACCATCGACTACCGCTACACCGTGTGGGTGGGCTTCAACCCCGACGAGTTCCTGGCCAACTTCAGCGACATCCACGCCGGCGAGCTGTACTTCGTGGACAGCGACCCCCTGCAGGACCACAACATGTACAACGACAGCCAGGGCGGCGACCTGTTCCAGCTGCTGATGCCCTAG
配列番号8
ホモサピエンスコドン完全長前駆体ホルミルグリシン生成酵素 (FGE)、mRNAATGGCTGCGCCCGCACTAGGGCTGGTGTGTGGACGTTGCCCTGAGCTGGGTCTCGTCCTCTTGCTGCTGCTGCTCTCGCTGCTGTGTGGAGCGGCAGGGAGCCAGGAGGCCGGGACCGGTGCGGGCGCGGGGTCCCTTGCGGGTTCTTGCGGCTGCGGCACGCCCCAGCGGCCTGGCGCCCATGGCAGTTCGGCAGCCGCTCACCGATACTCGCGGGAGGCTAACGCTCCGGGCCCCGTACCCGGAGAGCGGCAACTCGCGCACTCAAAGATGGTCCCCATCCCTGCTGGAGTATTTACAATGGGCACAGATGATCCTCAGATAAAGCAGGATGGGGAAGCACCTGCGAGGAGAGTTACTATTGATGCCTTTTACATGGATGCCTATGAAGTCAGTAATACTGAATTTGAGAAGTTTGTGAACTCAACTGGCTATTTGACAGAGGCTGAGAAGTTTGGCGACTCCTTTGTCTTTGAAGGCATGTTGAGTGAGCAAGTGAAGACCAATATTCAACAGGCAGTTGCAGCTGCTCCCTGGTGGTTACCTGTGAAAGGCGCTAACTGGAGACACCCAGAAGGGCCTGACTCTACTATTCTGCACAGGCCGGATCATCCAGTTCTCCATGTGTCCTGGAATGATGCGGTTGCCTACTGCACTTGGGCAGGGAAGCGGCTGCCCACGGAAGCTGAGTGGGAATACAGCTGTCGAGGAGGCCTGCATAATAGACTTTTCCCCTGGGGCAACAAACTGCAGCCCAAAGGCCAGCATTATGCCAACATTTGGCAGGGCGAGTTTCCGGTGACCAACACTGGTGAGGATGGCTTCCAAGGAACTGCGCCTGTTGATGCCTTCCCTCCCAATGGTTATGGCTTATACAACATAGTGGGGAACGCATGGGAATGGACTTCAGACTGGTGGACTGTTCATCATTCTGTTGAAGAAACGCTTAACCCAAAAGGTCCCCCTTCTGGGAAAGACCGAGTGAAGAAAGGTGGATCCTACATGTGCCATAGGTCTTATTGTTACAGGTATCGCTGTGCTGCTCGGAGCCAGAACACACCTGATAGCTCTGCTTCGAATCTGGGATTCCGCTGTGCAGCCGACCGCCTGCCCACCATGGACTGA
I2SおよびFGEを共発現する2つの細胞株2Dおよび4Dを特徴付けるために、追加の実験を実施した。
I2S酵素の第一の特異的活性を評価した。蛍光に基づく4−MUFアッセイを使用して、特異的活性について、2Dおよび4D細胞株から産生されたI2S酵素を分析した。端的には、アッセイではI2S基質4−メチルウンベリフェリル−硫酸(4−MUF−SO4)の加水分解を測定する。I2Sによる4−MUF−SO4基質の切除時に、分子は、硫酸塩および天然に蛍光性の4−メチルウンベリフェリル(4−MUF)に転換する。結果として、経時的に蛍光性シグナルの全体的な変化を評価することによって、I2S酵素活性を決定することができる。当該実験について、I2S−AF 2Dおよび4Dヒト細胞株から産生された精製されたI2S酵素を、4−メチルウンベリフェリル−硫酸(4−MUF−SO4)、カリウム塩(Sigmaカタログ番号M−7133)の溶液でインキュベートした。一連の対照の標準試料を使用して、原液の1:100、1:200および1:20,000で希釈された市販のI2S酵素を使用して、アッセイの較正を行った。37℃で酵素アッセイを実施し、較正した蛍光光度計を使用してアッセイした。各標準試料について、得られる蛍光値を使用して、以下の等式を使用して、変動係数率を決定した。
ペプチドマッピングを使用して、FGly転換率を決定した。I2S活性は、以下に示されるように、ホルミルグリシン生成酵素(FGE)によってホルミルグリシン転換するために、システイン(成熟したヒトI2Sの59位に対応する)を必要とする。
FGly転換率と特異的活性の例示的な相関を図3に示す。示されるように、ホルミルグリシンの転換率が高いと、I2S酵素活性がより高くなることをデータは示唆している。
細胞株2Dおよび4Dによって産生される組換えI2Sタンパク質のグリカン組成物を決定した。アニオン交換クロマトグラフィーを使用してグリカン組成物の定量化を行った。以下に記載するように、これらの条件下で生成される組換えI2Sのグリカンマップは、7つのピーク群から構成され、負電荷の増加量に従って溶離し、少なくとも部分的に、酵素消化物から生じるシアル酸およびマンノース−6−リン酸グリコフォームに由来する。端的には、無血清細胞培養法(I2S−AF 2D無血清およびI2S−AF 4D無血清)を使用して得られる精製された組換えI2Sおよび参照の産生された組換えI2Sを、(1)シアル酸残基を取り除くための精製されたノイラミニダーゼ酵素(アルスロバクター・ウレアファシエンス(10mU/μL)、Roche Biochemical(インディアナポリス、インディアナ州)、カタログ番号269 611(1U/100μL)から単離)、(2)マンノース−6−リン酸残基を完全に放出するためのアルカリホスファターゼを、37±1℃で2時間、(3)アルカリホスファターゼ+ノイラミニダーゼ、または(4)処理なし、のいずれかで処理した。各酵素消化物を、Dionex CarboPac PA1 Guard Columnを備えたCarboPac PA1 Analytical Columnを使用して、High Performance Anion Exchange Chromatography with Pulsed Amperometric Detection(HPAE−PAD)によって分析した。0.4〜2.0ナノモルの範囲の一連のシアル酸およびマンノース−6−リン酸標準を、各アッセイについて実施した。100mMの水酸化ナトリウム中の48mMの酢酸ナトリウムを使用して、定組成法を、雰囲気カラム温度、流速1.0mL/分で最小15分間実施し、各ピークを溶離した。I2S−AFとI2S標準試料の両方について、個別の実施から生成されたデータを、単一のクロマトグラフにそれぞれまとめ、各個別の組換えタンパク質についてグリカンマップを表した。図4に示されるように、細胞株2Dおよび4Dによって産生されたI2Sの例示的なグリカンマップは、代表的な溶離ピーク(溶離の順序で)を表し、中性、モノ、ジシアリル化、モノホスホリル化、トリシアリル化、およびハイブリッド(モノシアリル化およびキャップされたマンノース−6−リン酸)、テトラシアリル化、およびハイブリッド(ジシアリル化およびキャップされたマンノース−6−リン酸)並びにジホスホリル化グリカンを構成した。
当該実施例は、大規模な無血清懸濁培養を開発し、最適化した細胞株を培養して、組換えI2Sを産生し得ることを説明する。
端的には、実施例1の2Dまたは4D細胞株を使用して種培養を確立した。選択のためにMTXを補充された無血清既知組成の拡張された培地を含む250mLの組織培養振とうフラスコに、細胞を移動し、炭酸水素ナトリウムでpHを7.3に調整し、37℃、5%のCO2で、数日間増殖させた。培養が十分な細胞密度および生存能に達すると、最初の種培養を使用して500mLの組織培養振とうフラスコに、最初の一連の段階的な細胞培養拡張を播種し、次に1Lの組織培養振とうフラスコに播種した。
Bioreactor(登録商標)系を使用して、十分な細胞密度になるまで成長させた。
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JP2019200186A (ja) * | 2018-05-18 | 2019-11-21 | 国立大学法人広島大学 | 変異型イズロン酸−2−スルファターゼの機能回復薬剤のスクリーニング方法 |
JP7060235B2 (ja) | 2018-05-18 | 2022-04-26 | 国立大学法人広島大学 | 変異型イズロン酸-2-スルファターゼの機能回復薬剤のスクリーニング方法 |
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