JP7005007B2 - 固体形態 - Google Patents
固体形態 Download PDFInfo
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- JP7005007B2 JP7005007B2 JP2017557899A JP2017557899A JP7005007B2 JP 7005007 B2 JP7005007 B2 JP 7005007B2 JP 2017557899 A JP2017557899 A JP 2017557899A JP 2017557899 A JP2017557899 A JP 2017557899A JP 7005007 B2 JP7005007 B2 JP 7005007B2
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- 125000005931 tert-butyloxycarbonyl group Chemical group [H]C([H])([H])C(OC(*)=O)(C([H])([H])[H])C([H])([H])[H] 0.000 description 1
- 238000012360 testing method Methods 0.000 description 1
- 230000001225 therapeutic effect Effects 0.000 description 1
- 238000012546 transfer Methods 0.000 description 1
- 238000012800 visualization Methods 0.000 description 1
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- C07C211/39—Compounds containing amino groups bound to a carbon skeleton having amino groups bound to carbon atoms of rings other than six-membered aromatic rings of an unsaturated carbon skeleton
- C07C211/40—Compounds containing amino groups bound to a carbon skeleton having amino groups bound to carbon atoms of rings other than six-membered aromatic rings of an unsaturated carbon skeleton containing only non-condensed rings
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Description
a)等方晶は等次元状である(立方体又は球体等)。
b)板状晶は平たい平面結晶であり、同程度の巾(breadth)及び幅(width)を有し、フレークより厚い。
c)フレークは薄く平たい結晶であり、同程度の巾及び幅を有し、板状晶より薄い。
d)ブレード(ラス)は細長いブレード状結晶である。
e)針状晶は針状で薄く同程度の幅及び巾を有する非常に細長い結晶である。
f)柱状晶は針状晶より大きな幅及び厚みを有する細長いプリズム状の結晶である。
・非吸湿性:重量増加Δm<0.2%;
・微吸湿性:重量増加0.2%≦Δm<2.0%;
・吸湿性:重量増加2.0%≦Δm<15.0%;
・高吸湿性:重量増加Δm≧15.0%;
・潮解性:十分な水を吸収して液体を形成する。
・生物学的有効用量が体重kgあたり150μg以下;
・治療1日用量が10mg以下;
・職業曝露限度(OEL)が空気1m3あたり10μg以下(8時間加重平均);又は
・許容される1日曝露量(ADE)が1日あたり100μg以下(生涯曝露)。
無水多形形態A(形態A)の中の(トランス)-N1-((1R,2S)-2-フェニルシクロプロピル)シクロヘキサン-1,4-ジアミン二塩酸塩は、国際公開第2013/057322(A1)号に黙示的に開示されている。
(トランス)-N1-((1R,2S)-2-フェニルシクロプロピル)シクロヘキサン-1,4-ジアミン二塩酸塩の形態Bは、たとえば本明細書に記載した方法によって制御された条件下で調製すれば、シーディングなしでも得ることができる。
(トランス)-N1-((1R,2S)-2-フェニルシクロプロピル)シクロヘキサン-1,4-ジアミン二塩酸塩の形態Cは、不安定な高温多形体であることが見出された。形態Aは加熱によって約140℃で形態Cに可逆的に変換される。形態Cは冷却によって約127℃で形態Aに戻る。材料を210℃以上に加熱すると分解が観察される。形態A及び形態Cは互変的に関連している。形態Cは形態Bの加熱によっては調製できない。
*相対強度は測定によってかなり変化することがある。
*相対強度は測定によってかなり変化することがある。
a)式BOC-(I)の化合物の溶媒への溶解;
b)HClの溶液の添加;
c)高温における水の添加;
d)温度の漸減による生成物の結晶化
を含む方法に関する。
e)式BOC-(I)の化合物の1-プロパノールへの溶解;
f)1-プロパノール中のHCl溶液の添加;
g)沈殿の物理的分離
を含む方法に関する。
X線粉末回折
XRPDパターンは、STOE STADI P回折計(CuKアルファ放射線源、一次Geモノクロメーター、位置感受性ストリップ検出器(Mythen 1K)、角度範囲3°~42°2シータ、0.5°2シータ検出ステップ幅、測定時間ステップあたり20s)を用いて、透過幾何学で周囲条件下で記録した。試料は物質をさらに処理(たとえば摩砕又は篩い分け)せずに調製し、分析した。
温度制御XRPD測定のため、試料をさらに処理(たとえば摩砕又は篩い分け)せずに直径1mmの水晶ガラス毛細管に入れてシールした。測定はSTOE高温/低温エクステンション(温度範囲-50℃~300℃)、NiCr/Ni熱エレメントを用いて、ランプ速度5℃/分、温度ステップ5℃ごと、ステップあたり測定時間30分として行なった。
単結晶構造解析のため、単結晶試料をゴニオメーターのナイロンループに載せ、周囲条件下で測定した。或いは、測定中、窒素流で結晶を冷却した。データはOxford DiffractionのGEMINI R Ultra回折計で採取した。データ採取のために波長1.54ÅのCu放射を用いた。データはOxford DiffractionのCRYSTALISソフトウェアで処理した。結晶構造は標準的な結晶学ソフトウェアで解読し、改善した。この場合にはBruker AXS(Karlsruhe)のプログラムShelXTLを用いた。
FT-ラマンスペクトルは、NdYAG1064nmレーザー及び液体窒素で冷却したゲルマニウム検出器を備えたBruker MultiRam FT-ラマン分光計を用いてスペクトル範囲4000~50cm-1で採取した。レーザー出力は約400mWとし、2cm-1の分解能を用い、2048回のスキャンを加えた。用いたアポジ化はBlackman-Harris4タームであった。試料はガラスバイアル中で測定した。
ヌジョールマルFTIRスペクトルはThermoNicolet6700FTIR分光計を用いて採取した。試料は2つの塩化ナトリウムプレートの間の約5mgの試料と約5mgのヌジョール(鉱油)からなるヌジョール懸濁液のフィルムとして調製した。
走査電子顕微鏡画像は、Σigma VP(Zeiss、Oberkochen、Germany)システムを用いて取得した。加速電圧を3kVとして、画像取得のために高真空下の二次電子検出器を用いた。画像のノイズを低減するためにフレームあたりスキャン17回のライン平均を適用し、完全取得時間を画像あたり44.6秒とした。
この形態Aの製造方法は国際公開第2013/057322(A1)号の158頁の実施例5に記載された手順に対応する。
この形態Aの製造方法は国際公開第2013/057322(A1)号の158頁の実施例5に記載された代替の手順に対応する。
1.5Lの二重ジャケット反応器中、窒素雰囲気下、周囲温度で、式(I)のBOC保護化合物であるtert-ブチル((トランス)-4-(((1R,2S)-2-フェニルシクロプロピル)アミノ)シクロヘキシル)カルバメート(50g、151mmol、1当量)を1-プロパノール(600g、750ml)に溶解した。澄明な溶液に1-プロパノール(289g、908mmol、6当量)中の11.46%m/mの塩酸を加えた。得られた懸濁液を40℃で一夜撹拌した。
式(I)のBOC保護化合物であるtert-ブチル((トランス)-4-(((1R,2S)-2-フェニルシクロプロピル)アミノ)シクロヘキシル)カルバメート5.0gを周囲温度で1-プロパノール60gに溶解した。この溶液に25%m/mHCl水溶液(HCl12当量)26.5gを加えた。得られた白色懸濁液を40℃に加熱し、18時間撹拌した。次いでこの懸濁液を85℃に加熱し、白色の懸濁液に水4.5gを加えた。約60分後、全ての粒子は溶解した。澄明な溶液を85℃でさらに30分撹拌し、次いで10℃/時間で-5℃まで冷却した(570分以内)。-5℃で少なくとも1時間撹拌した後、濾過によって結晶を分離し、冷却した(-5℃)1-プロパノール48gで洗浄した。湿潤した生成物を重量が一定になるまで50℃で乾燥し、3.86g(84%)の形態Bを白色粉末として得た。
形態A0.46gを水250mLに溶解した。真空(700~800mbar)を適用することにより、(フィルターフリットを用いて)60℃で1時間、無色の溶液を通して空気を泡立たせた。次いで60℃、150~50mbarで2時間、水を蒸発させた。得られた白色の形態Bを60℃、5~8mbarで16時間、乾燥した。
形態A約350mgを水6mLに溶解した。溶液をドライアイスで急速凍結し、48時間の昇華に供した。形態Bは無色のふわふわした粉末として得られた。
形態Aを約140℃に加熱することによって形態Cを調製した。約127℃未満で形態Cから形態Aへの再変換が観察された。210℃を超えると分解が観察された。
Claims (15)
- 14.6°、14.9°、16.0°、17.7°、18.7°、19.4°、20.6°、21.7°、24.4°、24.8°、25.7°、31.5°、35.2°及び35.9°(±0.2°)の回折角2シータにXRPDピークを含むXRPD回折パターンによって特徴付けられる、請求項1に記載の結晶。
- 図2、図3、図15又は図16のXRPD回折パターンによって特徴付けられる、請求項1から3の何れか一項に記載の結晶。
- ラマンスペクトルにおける1225cm-1(±1cm-1)のバンドによって特徴付けられる、請求項1から5の何れか一項に記載の結晶。
- ラマンスペクトルにおける1225cm-1及び745cm-1(±1cm-1)の特徴的なバンドによって特徴付けられる、請求項6に記載の結晶。
- ラマンスペクトルにおける1225cm-1、745cm-1、207cm-1、及び106cm-1(±1cm-1)の特徴的なバンドによって特徴付けられる、請求項6又は7に記載の結晶。
- 請求項1から9の何れか一項に記載の結晶並びに薬学的に許容される賦形剤を含む薬学的組成物。
- 請求項1から9の何れか一項に記載の結晶を含む治療活性物質。
- LSD1に関連する疾患又はLSD1阻害剤によって調節される疾患の治療又は予防における使用のための、請求項10に記載の薬学的組成物。
- LSD1に関連する疾患又はLSD1阻害剤によって調節される疾患の治療又は予防に有用な医薬の調製のための、請求項1から9の何れか一項に記載の結晶の使用。
- 疾患ががんである請求項12に記載の薬学的組成物。
- 疾患ががんである請求項13に記載の使用。
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AU2016259054B2 (en) | 2020-08-13 |
HK1245235A1 (zh) | 2018-08-24 |
HUE065558T2 (hu) | 2024-06-28 |
AR104505A1 (es) | 2017-07-26 |
PL3292100T3 (pl) | 2024-04-22 |
CN107735394B (zh) | 2021-11-02 |
JP2021119136A (ja) | 2021-08-12 |
CA2984203A1 (en) | 2016-11-10 |
KR20180022660A (ko) | 2018-03-06 |
HK1252089A1 (zh) | 2019-05-17 |
JP2018516883A (ja) | 2018-06-28 |
CN107735394A (zh) | 2018-02-23 |
AU2016259054A1 (en) | 2017-11-16 |
MX2017014035A (es) | 2018-03-01 |
EP3090998A1 (en) | 2016-11-09 |
IL255194B (en) | 2021-03-25 |
ES2969970T3 (es) | 2024-05-23 |
EP3292100B1 (en) | 2023-11-15 |
IL255194A0 (en) | 2017-12-31 |
WO2016177656A1 (en) | 2016-11-10 |
BR112017023740A2 (pt) | 2018-07-17 |
US20180086692A1 (en) | 2018-03-29 |
US10221125B2 (en) | 2019-03-05 |
KR102666390B1 (ko) | 2024-05-21 |
EP3292100C0 (en) | 2023-11-15 |
EP3292100A1 (en) | 2018-03-14 |
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