| Literature DB >> 31164580 |
Dalton R Gibbs1, Anisa Kaur2, Anoja Megalathan3, Kumar Sapkota4, Soma Dhakal5.
Abstract
Prism-based total internal reflection fluorescence (pTIRF) microscopy is one of the most widely used techniques for the single molecule analysis of a vast range of samples including biomolecules, nanostructures, and cells, to name a few. It allows for excitation of surface bound molecules/particles/quantum dots via evanescent field of a confined region of space, which is beneficial not only for single molecule detection but also for analysis of single molecule dynamics and for acquiring kinetics data. However, there is neither a commercial microscope available for purchase nor a detailed guide dedicated for building this microscope. Thus far, pTIRF microscopes are custom-built with the use of a commercially available inverted microscope, which requires high level of expertise in selecting and handling sophisticated instrument-parts. To directly address this technology gap, here we describe a step-by-step guide on how to build and characterize a pTIRF microscope for in vitro single-molecule imaging, nanostructure analysis and other life sciences research.Entities:
Keywords: fluorescence microscope; pTIRF; single-molecule FRET; single-molecule detection
Year: 2018 PMID: 31164580 PMCID: PMC6481079 DOI: 10.3390/mps1040040
Source DB: PubMed Journal: Methods Protoc ISSN: 2409-9279
Figure 1Prism-based total internal reflection fluorescence microscope (pTIRF) as it appears on the Smart Table UT2 (Newport Corporation, Irvine, CA, USA). The excitation path, focusing and beam positioning area, and the emission path are highlighted.
Figure 2Schematic diagram of the pTIRF microscope. The entire setup is split into three parts: (a) the excitation path; (b) the focusing and beam positioning section, containing an elevated section just above the microscope stage; and (c) the emission path. Green and Red lines represent 532 nm and 639 nm lasers.
Extensive list of microscope parts along with the catalog numbers, parts descriptions, and the vendors from which we bought the parts to build our microscope. The numbers in the rightmost column correspond to the optics numbering used in the Figures.
| Catalog/Item # | Item Description | Quantity | Vendor | Optics # |
|---|---|---|---|---|
| p/n 325–1206 | p/n 325–1206 UV FS Pellin-Broca Prism 11 × 20 × 6.4 mm | 2 | Altos Photonics, Inc. (Bozeman, MT, USA ) | 16 |
| Laser Barrier 150” wide X 92” long | 1 | Beamstop’r (Lyndhurst. OH, USA | ||
| 16212 | Immersion Oil Type FF (4 Fl. Oz.) | 2 | Cargille (Cedar Grove, NJ, USA) | |
| zet640/20x | magnetron bandpass clean-up filter (excitation path), 0–5 deg aoi | 1 | Chroma Technology Corp (Bellows Falls, VT, USA) | 5 |
| t565spxxr-uf3 | magnetron shortpass dichroic, 45 deg aoi | 1 | Chroma Technology Corp | 6 |
| 1069417 | SYS: CUBE 640-40 CIRCULAR: 640 nm: 40 mW | 1 | Coherent Inc. (Santa Clara, CA, USA) | 2 |
| 1073840 | ASSY: HEAT SINK: ACCESSORY: CUBE | 1 | Coherent Inc. | |
| 1214333 | Productivity Plus Bronze-CUBE | 3 | Coherent Inc. | |
| EW-06419-01 | Tygon Microbore Autoanalysis Tubing, 0.020” × 0.060”OD, 100 ft/roll | 4 | Cole-Parmer | |
| CL532-050-L | 532 nm Central Wavelength 50 mW CW Power | 1 | CyrstaLaser (Reno, NV, USA) | 1 |
| 4001 | Hardman DOUBLE/BUBBLE Extra-Fast Set Epoxy Red Package 3.5 g Packet | 3 | Ellsworth Adhesive Systems (Germantown, WI, USA) | |
| KBH-5503 | Laser Protective Eyewear for HeNe Alignment and KTP Alignment applications | 2 | Kentek Corporation (Pittsfield, NH, USA) | |
| 9470 | 15 ft USB 3.0 A Male to A Female Active Extension Cable | 2 | Monoprice (Rancho Cucamonga, CA, USA) | |
| 5010 | Cat6 24AWG UTP Ethernet Network Patch Cable, 20 ft Gray | 2 | Monoprice | |
| 2067 | USB to RS232 DB9 male(Serial)/DB25 male Converter Cable | 1 | Monoprice | |
| U-R380 | IX3-D6RES;6-POSITION IX NOSEPIECE CODED, DIC | 1 | Olympus America Inc. (Center Valley, PA, USA) | |
| U-V111C | U-TV1XC;C-MOUNT CAMERA ADAPTER, CENTERABLE | 1 | Olympus America Inc. | |
| 9-U734 | 45FR; 45MM FROSTED DIFFUSION FILTER, IX3 | 1 | Olympus America Inc. | |
| UYCP-11 | UYCP-11;US STYLE 3-PRONG POWER CORD | 1 | Olympus America Inc. | |
| 5-UR403 | IX3-RFA;STRAIGHT ILLUMINATOR | 1 | Olympus America Inc. | 17 |
| 5-UR416-1 | IX3-RFACS-1-2; CODED IX3FLUORESCENCE TURRET | 1 | Olympus America Inc. | 17 |
| OCT-TD7BX3 | TRF59907-OL3; Dual-band ET-532/640 nm laser TIRF set | 1 | Olympus America Inc. | |
| OAT-DU-897U-CS0-#BV | DU-897U-CS0-#BV; IXON ULTRA897 EMCCD, 56FPS, 512 × 512, 16 UM, USB | 1 | Olympus America Inc. | 19 |
| OAT-TR-EMFS-F06 | 532/640 EM SPLITTING 3 PART FILTER SET FOR DPC&OPTOSPLIT | 1 | Olympus America Inc. | |
| OAT-TR-DCIS-CA1-00 | DUAL CAM CASSETTE. REQ(TR-EMF S-F) | 1 | Olympus America Inc. | |
| O89-OptoIILS | OptoSplit II LS–1.0x; Optosplit II system w/cubes and diaphragm | 1 | Olympus America Inc. | 18 |
| OMT-010 | MT-010; LOGO CLOTH DUSTCOVER 11 × 25 × 26”, ANTI-STATIC BX, IX | 1 | Olympus America Inc. | |
| OVP-MSTUT2468 | M-ST-UT2-46-8; Tuned-Damped Table, 1200 × 1800 × 203 mm, M6 Holes | 1 | Olympus America Inc. | |
| OVP-S2000A428 | S-2000A-428; 28” Isolators w/Auto Leveling, Set of 4 | 1 | Olympus America Inc. | |
| OVP-ACWS | ACWS; Air Compressor, Low Noise, 110 V | 1 | Olympus America Inc. | |
| HPZ440WIN7-2 | 2805181;HP Z440, 2 × 1TBHD, RAID1, 32GB DDR3, WIN764, SERIAL, MS OFC | 1 | Olympus America Inc. | |
| D-M27FPW2 | 718668226; 27-INCH 16:9 RATIO FLAT PANEL, 4K UHD, HDMI, D PORT | 1 | Olympus America Inc. | |
| DIB-551.00 | Diamond Coated “Stick” Drills, DIB-551.00 | 10 | Shor International | |
| TR6-P5 | Ø1/2” Optical Post, SS, 8-32 Setscrew, 1/4”−20 Tap, L = 6”, 5 Pack | 3 | Thorlabs, Inc. (Newton, NJ USA) | |
| MB1218 | Aluminum Breadboard 12” × 18” × 1/2”, 1/4”−20 Taps | 1 | Thorlabs, Inc. | |
| SH8S050 | 8-32 Stainless Steel Cap Screw, 1/2” Long | 1 | Thorlabs, Inc. | |
| TR12 | Ø1/2” Optical Post, SS, 8-32 Setscrew, 1/4”−20 Tap, L = 12” | 6 | Thorlabs, Inc. | |
| SH25S038 | 1/4”-20 Stainless Steel Cap Screw, 3/8” Long | 1 | Thorlabs, Inc. | |
| RA90 | Right-Angle Clamp for Ø1/2” Posts, 3/16” Hex | 8 | Thorlabs, Inc. | |
| TR6 | Ø1/2” Optical Post, SS, 8-32 Setscrew, 1/4”−20 Tap, L = 6” | 1 | Thorlabs, Inc. | |
| TR075 | Ø1/2” Optical Post, SS, 8-32 Setscrew, 1/4”−20 Tap, L = 0.75” | 2 | Thorlabs, Inc. | |
| SS25S075 | 1/4”−20 Stainless Steel Setscrew, 3/4” Long, Pack of 25 | 1 | Thorlabs, Inc. | |
| SH25S075 | 1/4”−20 Stainless Steel Cap Screw, 3/4” Long, Pack of 25 | 1 | Thorlabs, Inc. | |
| B3648F | 36” × 48” × 2.4” Imperial Breadboard, 128 × 98 × 23 cm | 1 | Thorlabs, Inc. | |
| PSY313 | 900 × 1200 mm Full Under Shelf, 146 × 95 × 6 cm | 1 | Thorlabs, Inc. | |
| PTA512 | Air Compressor-110/115 V-60 Hz, US Power Plug, 45 × 38 × 46 cm | 1 | Thorlabs, Inc. | |
| RSP1 | Rotation Stage For 1” Optics 2.2”OD 1.062-20 ID | 1 | Thorlabs, Inc. | |
| TR3-P5 | 1/2” Dia. × 3” Length: Pack of 5 Post | 3 | Thorlabs, Inc. | |
| SS6MS25 | M6-1.0 × 25 mm Set Screw, 25 Pack | 2 | Thorlabs, Inc. | |
| SS6MS12 | M6 × 1.0 Stainless Steel Set Screw 12 mm Long Pack of (25) | 1 | Thorlabs, Inc. | |
| FMP1-P5 | Fixed Ø1” Optical Mount 5-Pack | 2 | Thorlabs, Inc. | |
| WP25M-VIS | Mounted Ø25.0 mm Wire Grid Polarizer, 420–700 nM | 1 | Thorlabs, Inc. | 4 |
| ID8 | Mounted Standard Iris, 8.0.mm max. Aper. | 1 | Thorlabs, Inc. | 7 |
| ID12 | Iris Diaphragm 1/2” | 1 | Thorlabs, Inc. | |
| ID15 | Mounted Standard Iris, 15.0.mm max. Aper. | 1 | Thorlabs, Inc. | 9 |
| WPMH05M-532 | Mounted Multi Order 1/2 Waveplate 532 nm | 1 | Thorlabs, Inc. | 3 |
| BB1-E02 | Ø25.4 mm Mirror, Broadband 400–750 nm | 4 | Thorlabs, Inc. | 10–13 |
| LB1904-A-ML | Mounted N-BK7 Bi-Convex Lens, Ø1”, f = 125 mm, -A | 1 | Thorlabs, Inc. | |
| LB1437-A-ML | Mounted N-BK7 Bi-Convex Lens, Ø1”, f = 150 mm, -A | 1 | Thorlabs, Inc. | |
| LB1945-A-ML | Mounted N-BK7 Bi-Convex Lens, Ø1”, f = 200 mm, -A | 1 | Thorlabs, Inc. | 14 |
| ESK01 | MOUNTING SUPPORTS ESSENTIALS KIT #1 | 1 | Thorlabs, Inc. | |
| LG1 | Laser Glasses, 190–400 nm, 808–1090 nm | 1 | Thorlabs, Inc. | |
| ADB-10 | Pellin Broca Prism 10 mm BK7 | 1 | Thorlabs, Inc. | 16 |
| MT3A/M | XYZ Metric Translator Stage | 1 | Thorlabs, Inc. | 15 |
| KS1 | Lockable Kinematic 1” Optic Mount | 4 | Thorlabs, Inc. | |
| SDA90120S | Standing Height Active Science Desk to suit 900 × 1200 mm | 1 | Thorlabs, Inc. | |
| LS6S2T0 | Uni-stabled housed Shutter | 1 | Vincent Associates | 8 |
| VCM-D1 | Shutter Driver | 1 | Vincent Associates |
Figure 3Real image of the excitation path of a pTIRF microscope corresponding to the “part a” of Figure 2. Red and green lines show the path of the lasers. (1—green laser, 2—Red laser, 3—half-wave plate, 4—polarizer, 5—clean-up filter, 6—dichroic mirror, 7—iris, 8—shutter, 9—iris, 10—mirror, 11-elevating mirror).
Figure 4(a) Real image of the focusing and beam positioning section of a pTIRF microscope. Red and green lines show the path of the lasers. (12—mirror, 13—mirror, 14—focusing lens, 15—micrometer, 16—prism. The prism is mounted on the clamp that is attached to the prism support-arm (yellow). (b) Schematic of the smFRET setup with DNA Holliday junction (HJ) bound to the surface of a flow cell. An evanescent wave is created at the quartz/buffer interface by total internal reflection of lasers when passing through the prism (see Technical Notes for detail).
Figure 5(a) Real image of the emission path of a pTIRF microscope. Red and green lines show the path of the lasers (17—Microscope, 18—Optosplit-II, 19—EMCCD Camera). (b) Diagram of Optosplit-II detailing the path of the light coming from the microscope and directed through a dichroic mirror (D), set of filters (F) and a series of mirrors (M) that serve to separate green and red emissions and parallelize the light to allow two color channels to be recorded on one EMCCD camera.
Figure 6Image of a properly adjusted optosplit. Image of silkscreen printed “2” on glass slide was captured using the program called Single.exe (see Data Acquisition section for details). Note that if one uses Single.exe to acquire smFRET data, the green channel must be on the left and the red channel on the right. For proper alignments of the channels, the image size is adjusted to take up approximately half of the available space and that the images are well separated with a black border running around and between them.
Figure 7Schematic of a flow cell. The quartz microscope slide is shown with pipet tips and tubing to allow for buffer exchange. The sample chamber consists of a parafilm sandwiched between a microscope slide and the glass coverslip. The arrow shows the direction of the buffer flow.5.3. Surface-Functionalization of Flow Cell.
Figure 8Characterization of the instrument with a typical experiment. (a) Conformational switching of the synthetic Holliday junction (HJ) labeled with a Cy3-Cy5 fluorophore pair. (b) Representative single molecule fluorescence-time traces from our smFRET experiment on the HJ. Note that the junction switches between the Iso-I and Iso-II conformations. Adapted with permission from Ref 31. Copyright 2018 American Chemical Society.
Figure 9Schematic of the light path at the interface between two media in TIRFM imaging system. Refracted light at an angle of incident (i2) larger than the critical angle (c) undergoing total internal reflection, leading to the formation of evanescent wave. The creation of the evanescent wave allows selective excitation of fluorophores that are on or close (typically ~100 nm from the surface) [11,43,44] to the surface.
Figure 10Dimensions of prism clamp from three directions. The sides are mirrored and the holes taped with 8–32 machine threading. All of the dimensions are in millimeter (mm).
Figure 11Dimensioned drawing of prism support arm from 3D printer file. Left, a 3D rendering of the finished item; Middle, side view; Right, top view. Units are in mm, round holes are 7.6 mm wide, square hole is 5 mm.