JP6174609B2 - 1以上の生物学的構造体のマルチモダリティ顕微鏡画像生成を実行する装置及び方法 - Google Patents
1以上の生物学的構造体のマルチモダリティ顕微鏡画像生成を実行する装置及び方法 Download PDFInfo
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- JP6174609B2 JP6174609B2 JP2015012474A JP2015012474A JP6174609B2 JP 6174609 B2 JP6174609 B2 JP 6174609B2 JP 2015012474 A JP2015012474 A JP 2015012474A JP 2015012474 A JP2015012474 A JP 2015012474A JP 6174609 B2 JP6174609 B2 JP 6174609B2
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- G02B23/00—Telescopes, e.g. binoculars; Periscopes; Instruments for viewing the inside of hollow bodies; Viewfinders; Optical aiming or sighting devices
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Description
(関連出願の相互参照)
(実施例)
代表的な方法
卓上型典型OCTシステムとOFDIシステム
代表的FFOCMシステム
代表的なSECMシステム
検体作成、エタノール処理および組織学
代表的な結果
生体OFDI技法を用いた胎児心臓の四次元画像化
生体胎児心臓に対する高分解能OFDI手法
体外FFOCM手法を用いた胎児心臓の高分解能三次元画像の生成
生体SECM手法による胎児心臓の高速画像生成
アフリカツメガエル幼生の動脈瘤壁拡張
エタノール暴露による心異常
代表的結果の考察
of mesenchymal stem cell in myocardial infarction”(心筋梗塞に対する間充織幹細胞の 生体磁気共鳴画像の生成)、Circulation 107、 pp.2290−2293)、)、及びF.Wiesmann et al.、“Developmental changes of cardiac function and mass assessed with MRI innenotal、juvenile、and adult mice”(MRIに関わる新生、若年性および成体ハツカネズミの心機能および主要部位の発育上の変化)、AmJ Physiol Heart Circ Physiol 278、pp.H652−657(2000)参照)、マイクロCT(M.Malyar et al.、“Relationship between arterial diameter and perfused 組織 volume in myocardial microcirculation: a micro―CT−based analysis(心筋微小循環における動脈径と分散組織の体積との相関:マイクロCTを用いた分析)”、Am J Physiol heart Circ Physiol 286、pp。H2386−2392(2004)、and C.T.Badea et al.“4−D micro―CT of the mouse heart”(マウス心臓の4−DマイクローCT)、Mo I Imaging 4、pp.130−135(2005)、超音波(S.Srinivasan et al., “Noninvasive, in utero imaging of mouse embryonic heart development with 40−MHz echocardiography”, Circulation 98, pp.912−918 (1998)参照)及びPET(L.W.Dobrucki et al., “Molecular cardiovascular imaging”, Curr Cardiol Rep 7, pp.130−135 (2005), and L.Stegger et al., “Monitoring left ventricular dilation in mice with PET,”(PETを用いたマウスの左心室肥大のモニタリング)JNucl Med 46, pp.1516− 1521 (2005)を参照)を用いて実証してきた。
表1.胎児心臓の光学的画像生成を目的とした内因性コントラストモダリティの比較
灰色の陰影を付けた細胞は、最大の横方向分解能特性、軸方向分解能特性及びフレームレート特性を持つ画像生成技術を表す。
Claims (29)
- マルチモダリティ画像生成のための検査用装置であって、
光学的な第1のモダリティ及び光学的な第2のモダリティにおいて少なくとも一部が共用して用いられる光学手段を含み、スペクトル符号化共焦点顕微鏡技術(SECM)である前記第1のモダリティに基づいて少なくとも一つのサンプルの少なくとも一つの部位から前記光学手段を介して受信した第1の信号に関連する第1のデータと、前記第1のモダリティとは異なる前記第2のモダリティに基づいて前記少なくとも一つのサンプルから前記光学手段を介して受信した第2の信号に関連する第2のデータとを送出し、更に、基準反射体から基準に関連した第3のデータを受信するように構成された少なくとも一つの第1の機器と、
前記第1のデータ及び前記第3のデータに基づいた表示のための第4のデータを生成し、前記第2のデータに基づいた表示のための第5のデータを生成するように構成された、少なくとも一つの第2の機器と、を備え、
前記第1のデータと前記第2のデータは、前記第1の機器により略同時に送出され、前記第4のデータはサンプルの構造データであり、前記第5のデータはサンプルの機能的データである、検査用装置。 - 前記第2のモダリティが、蛍光画像生成技術である、請求項1記載の検査用装置。
- 前記少なくとも一つの第1の機器及び前記少なくとも一つの第2の機器と関連付けられた顕微鏡装置を更に備える、請求項1記載の検査用装置。
- 電磁放射を前記少なくとも一つの部位に向けて照射するように構成されたビーム走査機構を備える、請求項1記載の検査用装置。
- 前記少なくとも一つの第2の機器は、(i)二次元画像又は(ii)三次元画像の少なくとも一つを前記更なるデータの関数として生成する、請求項1記載の検査用装置。
- 前記第1のデータ及び前記第2のデータは、前記少なくとも一つのサンプルの略同一の位置に関連付けられる、請求項1記載の検査用装置。
- 前記第1のデータ及び前記第2のデータの少なくとも一つは、前記第1のデータ及び前記第2のデータの他方を用いて取得する、請求項1記載の検査用装置。
- 前記少なくとも一つの第1の機器及び前記少なくとも一つの第2の機器は、一つのプローブ又は単一の筐体の少なくとも一つに設けられる、請求項1記載の検査用装置。
- 前記少なくとも一つの第1の機器及び前記少なくとも一つの第2の機器は、共通の部品を有する、請求項1記載の検査用装置。
- 前記共通の部品は、波長掃引光源装置に存在する、請求項9記載の検査用装置。
- 前記少なくとも一つの第1の機器は、スペクトル符号化共焦点顕微鏡検査情報を取得するように構成された、請求項1記載の検査用装置。
- 前記少なくとも一つの第1の機器は、明視野、暗視野、位相コントラスト、偏光、上部反射性(epirefiectance)又は反射顕微鏡検査情報の少なくとも一つを取得するように構成された、請求項1記載の検査用装置。
- 一のモダリティから前記一のモダリティとは異なるモダリティに変更するように構成された更なる装置を備える、請求項1記載の検査用装置。
- 前記少なくとも一つの第1の機器は、複数の波長を有する光源装置から提供される信号に関連する光コヒーレンストモグラフィー情報を取得するように構成され、
前記第2の信号と第3の信号の間のスペクトル干渉を前記複数の波長の関数として検出するように構成された複数の検出器を更に備える、請求項1記載の検査用装置。 - 前記少なくとも一つの第1の機器は、波長が時間とともに変化する光源装置から提供される信号に関連する光コヒーレンストモグラフィー情報を取得するように構成された、請求項1記載の検査用装置。
- 前記少なくとも一つの機器は、更に、基準に関連する第3のデータを受信するように構成され、
前記少なくとも一つの第2の機器は、前記第3のデータの関数として前記更なるデータを生成するように構成された、請求項1記載の検査用装置。 - 既に取得した前記第1のデータ及び前記第2のデータの少なくとも一つに基づいて前記少なくとも一つの第1の機器及び前記少なくとも一つの第2の機器の少なくとも一つを制御するように構成された少なくとも一つの第3の機器を備える、請求項1記載の検査用装置。
- 前記第1のデータ及び前記第2のデータに基づいて画像を生成するように構成された少なくとも一つの第4の機器を備える、請求項1記載の検査用装置。
- 前記第1のデータに基づいて少なくとも一つの第1の画像を、前記第2のデータに基づいて少なくとも一つの第2の画像を生成するように構成された少なくとも一つの第5の機器を備え、前記第1の画像と前記第2の画像は、前記第1のデータと前記第2のデータの関数としてお互いに関連付けられている、請求項1記載の検査用装置。
- 前記少なくとも一つの第1の機器は、光コヒーレンストモグラフィー情報を取得するように構成された、請求項1記載の検査用装置。
- 前記少なくとも一つの第1の機器は、光周波数領域干渉分光情報を取得するように構成された、請求項1記載の検査用装置。
- マルチモダリティ画像生成のための検査用装置であって、
光学的な第1のモダリティ及び光学的な第2のモダリティにおいて少なくとも一部が共用して用いられる光学手段を含み、スペクトル符号化共焦点顕微鏡技術(SECM)である前記第1のモダリティに基づいて少なくとも一つのサンプルの少なくとも一つの部位から前記光学手段を介して受信した第1の信号に関連する第1のデータと、前記第1のモダリティとは異なる第2のモダリティに基づいて前記少なくとも一つのサンプルから前記光学手段を介して受信した第2の信号に関連する第2のデータと、各々が前記第1のモダリティ及び第2のモダリティとは異なる更なるモダリティに基づき、かつ、前記少なくとも一つのサンプルから受信した第2の信号に関連する、少なくとも一つの第3のデータとを送出するように構成され、前記第1のデータと前記第2のデータを略同時に送出する、少なくとも一つの第1の機器と、
前記第1のデータ及び前記第3のデータに基づいた表示のための第4のデータを生成し、前記第2のデータに基づいた表示のための第5のデータを生成するように構成された、少なくとも一つの第2の機器とを備え、
前記第4のデータはサンプルの構造データであり、前記第5のデータはサンプルの機能的データであり、前記第1のモダリティ、前記第2のモダリティおよび前記更なるモダリティは互いに異なる、検査用装置。 - 前記少なくとも一つの第1の機器が、光コヒーレンストモグラフィー情報を取得するように構成された、請求項22記載の検査用装置。
- 前記少なくとも一つの第1の機器が、光コヒーレンス顕微鏡検査情報を取得するように構成された、請求項22記載の検査用装置。
- 前記少なくとも一つの第1の機器が、全域(full field)光コヒーレンス顕微鏡検査情報を取得するように構成された、請求項22記載の検査用装置。
- マルチモダリティ画像生成のための検査用装置であって、
第1のスペクトル符号化モダリティに基づいて少なくとも一つのサンプルの少なくとも一つの部位から、少なくとも一部が共用して用いられる光学手段を介して受信した第1の信号に関連する第1のデータと、第2の非スペクトル符号化モダリティに基づいて前記少なくとも一つのサンプルから前記光学手段を介して受信した第2の信号に関連する第2のデータとを送出するように構成された少なくとも一つの第1の機器と、
前記第1のデータと前記第2のデータに基づいて更なるデータを生成するように構成された少なくとも一つの第2の機器とを備え、
前記第1のデータと前記第2のデータは、前記第1の機器により略同時に送出され、前記第1のデータに基づく第3のデータと前記第2のデータに基づく第4のデータとは前記第2の機器により共に表示され、
前記第3のデータはサンプルの構造データであり、前記第4のデータはサンプルの機能的データである、検査用装置。 - 請求項1に記載の検査用装置の作動方法であって、
前記第1の機器が、スペクトル符号化共焦点顕微鏡技術(SECM)である前記第1のモダリティに基づいて少なくとも一つのサンプルの少なくとも一つの部位から前記光学手段を介して受信した第1の信号に関連する第1のデータと、前記第1のモダリティとは異なる第2のモダリティに基づいて前記少なくとも一つのサンプルから前記光学手段を介して受信した第2の信号に関連する第2のデータと、を送出するステップと、
前記第1の機器が、基準反射体から基準に関連する第3のデータを受信するステップと、
前記第2の機器が、前記第1のデータ及び前記第3のデータに基づいた表示のための第4のデータを生成し、前記第2のデータに基づいた表示のための第5のデータを生成するステップと、を含み、
ここで、前記第1のデータは、前記少なくとも一つのサンプルの第1の平面に関連する情報を含んでおり、前記第2のデータは、前記第1の平面に直交する、前記少なくとも一つのサンプルの第2の平面に関連する情報を含んでおり、
前記第1のデータ及び第2のデータは、前記送出するステップにおいて略同時に送出され、前記第4のデータはサンプルの構造データであり、前記第5のデータはサンプルの機能的データである、検査用装置の作動方法。 - 請求項22に記載の検査用装置の作動方法であって、
前記第1の機器が、スペクトル符号化共焦点顕微鏡技術(SECM)である前記第1のモダリティに基づいて少なくとも一つのサンプルの少なくとも一つの部位から前記光学手段を介して受信した第1の信号に関連する第1のデータと、前記第1のモダリティとは異なる第2のモダリティに基づいて前記少なくとも一つのサンプルから前記光学手段を介して受信した第2の信号に関連する第2のデータと、各々が、前記第1のモダリティ及び前記第2のモダリティとは異なる更なるモダリティに基づき、前記少なくとも一つのサンプルから受信した第2の信号に関連する、少なくとも一つの第3のデータと、を送出するステップと、
前記第2の機器が、前記第1のデータ及び前記第3のデータに基づいた表示のための第4のデータを生成し、前記第2のデータに基づいた表示のための第5のデータを生成するステップと、を含み、
前記第4のデータはサンプルの構造データであり、前記第5のデータはサンプルの機能的データであり、前記第1のモダリティ、前記第2のモダリティおよび前記更なるモダリティは互いに異なる、検査用装置の作動方法。 - 請求項26に記載の検査用装置の作動方法であって、
前記第1の機器が、第1のスペクトル符号化モダリティに基づいて少なくとも一つのサンプルの少なくとも一つの部位から、少なくとも一部が共用して用いられる光学手段を介して受信した第1の信号に関連する第1のデータと、第2の非スペクトル符号化モダリティに基づいて前記少なくとも一つのサンプルから前記光学手段を介して受信した第2の信号に関連する第2のデータと、を送出するステップと、
前記第2の機器が、前記第1のデータと前記第2のデータに基づいて更なるデータを生成するステップと、を含み、
前記送出するステップにおいて、前記第1のデータと前記第2のデータは略同時に送出され、
前記生成するステップにおいて、前記第1のデータに基づく第3のデータと前記第2のデータに基づく第4のデータとは前記第2の機器により共に表示され、
前記第3のデータはサンプルの構造データであり、前記第4のデータはサンプルの機能的データである、検査用装置の作動方法。
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WO2020111486A1 (ko) * | 2018-11-29 | 2020-06-04 | 재단법인대구경북과학기술원 | 다중모드 현미경 |
KR20200064636A (ko) * | 2018-11-29 | 2020-06-08 | 재단법인대구경북과학기술원 | 다중모드 현미경 |
KR102135593B1 (ko) * | 2018-11-29 | 2020-07-20 | 재단법인대구경북과학기술원 | 다중모드 현미경 |
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