Cell seeding is a critical step. The ability of cells to adhere to the fiber in a 3D set-up is considerably less than that seen for 2D tissue culture plastic. This is likely due to the reduced contact time between cell and substrate. In the HFB the cells fall through the module during the static phases of seeding. These are considerably shorter in time compared to the one continuous static phase used in 2D. Cells have to make connections to the substrate in this time. Additionally, due to the curved nature of the fibers there is no flat surface for the cells to rest and make connections like there is in 2D culture. Whilst this can be compounded by the chemistry of the fiber employed we know this not to be the case for the polymer employed in this study (data not shown). Increasing the seeding time and cell seeding density leads to the formation of cell aggregates that fall through the module during the static phases at a faster rate than single cells and further reduces the contact time between cells and substrate. Increasing the time also leads to yellowing of the media as there is a high density of cells and no media exchange during this step. Using the conditions described in Section 4 cell seeding rates of ~15% are consistently achieved with the HepG2/C3A cells (Figure 5A). Whilst this may be considered a low fraction there are enough cells to generate well-populated fibers in a matter of days (Figures 5B and 6); following a seven-day proliferation period the cell density reached in the HFB is approaching 3x105/cm2. This is an appropriate density for many assays utilizing hepatocytes and can be considered to be reaching confluence.
The proliferation rates achieved in the HFB are slower when compared to that achieved in 2D cell culture (Figure 5C). This is unlikely to be due to loss of cells in the dynamic flow of the system as cell counts in the media are low (average ± SEM: 20,343 cells ± 3,674 cells per 24 hr at confluence, which is 4% of the total cells) and this does not increase when the permeation rate is turned up to 400 µl/hr (data not shown). It is also unlikely to be due to a decrease in viability and subsequent loss of cells (see Figure 5D and below). It may be explained, at least in part by the fact this cell line was clonally derived from HepG2 and selected on its ability to show contact inhibition of cell proliferation. The cells in the HFB are seeded at 6x the density of the 2D cells which may lead to slower proliferation rates.
Viability remains high throughout the HFB with cells exhibiting >90%. Whilst there is a slight decrease in viability at the outlet end compared to the inlet this was not found to be significant (t-test p=0.22).
Monitoring of glucose consumption and lactic acid production has been used to tune the media feed rate and media volume in the system. Using 800 µl/hr and a total media volume of 50 ml the glucose and lactic acid levels are maintained above and below (respectively) those seen in standard tissue culture plastic culture.
Albumin secretion is a key liver function carried out by hepatocytes. It is secreted into the serum where it plays several roles in transport and homeostasis. The albumin secretion by cells grown in the HFB is 15-fold higher than that in cells grown on 2D (Figure 7). This demonstrates the cells are functional in the HFB and at least in the case of albumin secretion, this function is elevated in the HFB.

Figure 1. The in vivo-like environment of a HFB. Cells are seeded onto the outside of the porous fibers. Media is delivered through the fiber lumen, mimicking a blood capillary. (A) Longitudinal section of a fiber (not to scale). (B) Cross section of a 3 fiber reactor. Please click here to view a larger version of this figure.

Figure 2. The HFB module. (A) The dimensions of the module used in this study. The dimensions were chosen to fit 3 fibers and fulfil the needs of the current research project. Different sizes can be manufactured and tailored for individual systems and fibers. (B) A photograph of the module with attached end cap and module connectors. Please click here to view a larger version of this figure.

Figure 3. Module fabrication. (A) Fibers are cut to size and inserted into the module. (B) Fibers are glued into the module, allowed to dry. (C) The ends are cut flush with the glass. Please click here to view a larger version of this figure.

Figure 4. HFB system set-up. Arrows indicate direction of media flow. Red = feed tube. Yellow = pump tube. White = HFB module. Green = retentate tube with clamp. Blue = permeate tube. Please click here to view a larger version of this figure.

Figure 5. Seeding, proliferation, viability and biochemical analysis. (A) Percent of cells seeded. Black diamonds represent individual HFBs. The red bar is the mean. (B) Cells densities at seeding and after a 7 day proliferation period. 2D cell numbers were determined by trypsinization and counting using a haemocytometer. HFB cell numbers were determined using the PicoGreen assay and a standard curve produced from C3A cells26. n=5-6. Bars = SEM. (C) Population doubling times. n=5-7. Bars = SEM. (D) Viability determined by trypan blue exclusion at the end of a 7 day proliferation. Inlet, central and outlet represent regions within the HFB. n=3-5. Bars=SEM. (E&F) Glucose consumption and lactic acid production. Levels were monitored at the reservoir bottle (inlet) as well as the retentate and permeate outlets and compered to routine culture on tissue culture plastic (media changed on day 3&5). n=3-5. Bars=SEM. Please click here to view a larger version of this figure.

Figure 6. Images of cells grown on fibers in a HFB. Cells were seeded and grown for 48 hr before fibers were excised, washed in PBS, fixed in 4% paraformaldehyde, washed in PBS and nuclei stained with DAPI. Each image is a composite of 12 'focus stacked' images in order to increase the depth of field of the resulting image. Areas of higher and lower cell density are found along the fiber at this time point and are shown. Where present fiber boundaries are denoted with a red dashed line. Images were taken on an inverted fluorescence microscope. Image = 10X objective. Bar = 200 µm. Please click here to view a larger version of this figure.

Figure 7. Albumin secretion. Cells were seeded onto tissue culture plastic at 10,667/cm2 and in the HFB as described in Section 4. Cells were proliferated for 6 days. Following this proliferation period the tissue culture plastic and HFB culture media was changed for a serum free Williams E media supplemented with glutamine and penicillin/streptomycin for 24 hr. Media samples were taken and an albumin quantified by ELISA according to the manufactures instructions (Table 1). n=5-6. Bars = SEM. Please click here to view a larger version of this figure.
| Section | Name of Equipment | Company | Cat. No. | Notes | Images |
| 2 | Glass HFB Module | Soham Scientific | --- | Custom Item. | |
| 2.1 | Sigmacote® | Sigma-Aldrich | SL2 | |
| 2.3 | Silicoset 151 | Intertronics | ACCSS151 | Silicone Glue. |
| 2.5 | PTFE tape | Sigma-Aldrich | Z104388 | |
| 3.2.1 | Reservoir bottle | Fisher | 11972619 | | |
| Q-series cap | Kinesis | 00932Q-3V | PTFE the screw threads of the adapters and fitting nut. Attach to the Q-series cap. Attach an 8.5 cm section of the supplied PTFE tubing under the 1 mm adapter and a 4 cm section under the 3 mm adapter. |  |
| Adapter, Male, 1.0 mm ID | Kinesis | 008NB10-KD5L |
| Adapter, Male, 3.0 mm ID | Kinesis | 008NB30-KD5L |
| Fitting Nut | Kinesis | U-350 |
| Neoprene tubing | Fisher | 10366344 | Attach the Hepa filter to 6 cm of neoprene tubing and attach this to the 'fitting nut'. Attach a 2x 30 mm sections of L/S14 tubing to the top two barbs of the Y-connector and a 3 cm section of L/S16 tubing to the bottom. Attach this to the barb of the 3 mm ID adapter. (Section 3.2.1) |  |
| HEPA-vent | Fisher | 11374634 |
| Y-connector, barbed | Cole Parmer | OU-06295-10 |
| L/S16 Silicone tubing | Cole Parmer | OU-96410-16 |
| L/S14 Silicone tubing | Cole Parmer | WZ-96410-14 |
| L/S13 Silicone tubing | Cole Parmer | OU-96410-13 | 80 cm to connect the 1.0 mm barbed adapter on the Q-series cap to the pump tubing = Feed tube. | |
| WM 205U/CA pump | Fisher | 1248-6300 | | |
| WM pump tubing, PVC, blue-orange, 0.25 mm bore | Fisher | 12416310 | PTFE the screw thread of the male adapter and connect the female adapter. Work the pump tubing over one of the barbs. Repeat this set-up at the other end of the tubing. (Section 3.2.1) |  |
| Adapter, Male, 1.0 mm ID | Kinesis | 008NB10-KD5L |
| Adapter, Female, 1.0 mm ID | Kinesis | 008NB10-KD2L |
| 3.2.2 | Female Luer cap | Cole Parmer | WZ-45508-64 | Side port end caps. |  |
| L/S13 Silicone tubing | Cole Parmer | OU-96410-13 | 40 mm section to connect the pump tubing to a module connector. |
| L/S16 Silicone tubing | Cole Parmer | OU-96410-16 | 3x 30 mm of L/S16 fitted to 3x reducers = module connectors. (Section 3.2.2) |
| Barbed reducer 1/8" x 1/16" | Cole Parmer | 30616-43 |
| 3.2.4 | L/S13 Silicone tubing | Cole Parmer | OU-96410-13 | 55 cm section to connect the retentate to the L/S14 of the Y-connector on the Q-series cap. |  |
| L/S13 Silicone tubing | Cole Parmer | OU-96410-13 | 45 cm section to connect the permeate to the L/S14 of the Y-connector on the Q-series cap. |
| Straight barbed union | Cole Parmer | WZ-30612-43 | Attach to the end of the L/S13 that will connect with the L/S14 of the Y-connector. |
| 3.4.2 | Clamp | VWR | 229-0609 | | |
| 4.3 | 4 mm Silicone tubing | Fisher | FB68858 | Fold over a 40 mm section of tubing and secure with a cable tie = Module end cap. (Section 4.3) |  |
| Cable tie | Fisher | 12326377 |
| 4.4 | MACSmix tube rotator | Miltenyi Biotech | 130-090-753 | An adaptation may be required to attach the modules. | |
| 4.5 | Leur Injection port | Thistle Scientific | IB-10820 | Attach the end cap to the injection port. (Section 4.5) | |
| Female Luer cap | Cole Parmer | WZ-45508-64 |
| 5 | L-lactic acid kit | Megazyme | K-LATE | | |
| 5 | D-glucose kit | Megazyme | K-GLUC | | |
| 6.2 | Scalpel / micro knife | InterFocus | 10315-12 | | |
| 7.4.3 | Albumin ELISA | Bethyl Labs | E80-129 | | |
Table 1. Components of the HFB set-up. The text section relevant to each component is given in column 1.